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I'm tired. This must be simple. wood... for.... trees....

I'm trying to return the position of a specific value in a 2D array.

I have a double array [300][300].

All values contained in it are 0 apart from one which is 255.

How do I write a method to return the [i][j] location of 255?

Thanks in advance.

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1  
Are these values sorted? If so, there are O(log n) (completely sorted) or O(n log n) (only rows or columns sorted) versions. Otherwise, you're stuck with O(n^2), as has been provided. –  Clockwork-Muse Dec 6 '11 at 23:31
    
No, not sorted. –  Oliver Burdekin Dec 7 '11 at 0:39

2 Answers 2

up vote 3 down vote accepted

Simply iterate over all the elements until you find the one that is 255:

for ( int i = 0; i < 300; ++i ) {
    for ( int j = 0; j < 300; ++j ) {
        if ( array[i][j] == 255 ) {
            // Found the correct i,j - print them or return them or whatever
        } 
    }
}
share|improve this answer
    
Hi Shakedown and thanks so much for your help. I had reached this point but was having trouble returning both the integers. i.e. if [150][200] held 255 how would I return those two integers to then use elsewhere? Once I've got the location I then need to use these two as the first two locations in a 3D array ([150][200][75]). /**Can you tell I'm a newb?**/ –  Oliver Burdekin Dec 7 '11 at 0:38
    
@OliverBurdekin: If you want to return them you'd have to put them into an array or make an object that has both of them in it. Or, you could set some class variables internally in that method (and not return anything), though I don't like this. Another option is to leave those i,j variables inside that method and just pass them along to another method that will then use those for further indexing. –  Nate W. Dec 7 '11 at 0:48
    
Brilliant. Thanks again! –  Oliver Burdekin Dec 7 '11 at 0:51

This works:

public int[] get255() {
  for(int i = 0; i < array.length; i++)
    for(int j = 0; j < (array[i].length/2)+1; j++)
      if(array[i][j] == 255)
        return new int[] {i,j};
      else if(array[j][i] == 255) //This just slightly increases efficiency
        return new int[] {j,i};
  return null; //If not found, return null
}

This is possibly the fastest, though. It checks starting in each corner, progressively working inward to the center, horizontally first, then vertically:

public int[] get255() {
  for(int i = 0; i < (array.length/2)+1; i++)
    for(int j = 0; j < (array[i].length/2)+1; j++)
      // Check the top-left
      if(array[i][j] == 255)
        return new int[] {i,j};

      // Check the bottom-left
      else if(array[array.length-i][j] == 255)
        return new int[] {array.length-i,j};

      // Check the top-right
      else if(array[i][array[i].length-j] == 255)
        return new int[] {i,array[i].length-j};

      // Check the bottom-right
      else if(array[array.length-i][array[i].length-j])
        return new int[] {array.length-i, array[i].length-j};

  return null; //If not found, return null
}
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Wouldn't this check every element twice if 255 isn't in the array? –  skyuzo Dec 6 '11 at 23:32
    
yes, but if you can assume that 255 will be in the array, it has around a 25% reduction in time at best. –  Jon Dec 6 '11 at 23:45
    
Well, you could just iterate i=0..length/2 and j=0..length/2 instead to prevent double-checking. (Might be off-by-one) –  skyuzo Dec 6 '11 at 23:50
    
@skyuzo don't know why I forgot about that, added now. Also added a safety with .length/2+1. i has to go through the entire length, though. –  Jon Dec 6 '11 at 23:52
    
This might not actually be more efficient though. You're still making the same number of comparisons as Shakedown's answer (n^2). –  skyuzo Dec 6 '11 at 23:55

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