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Woohoo, I've come to arrays now, thank god.

Now, I've got 2 arrays!

int colorvalues[][]  = {{34,255,255,56},{127,204,11,34},{123,98,127,34},{34,34,127,17}};

Imagine it as a 4x4 pixel picture

Now, I want to create a histogram, the distribution of colorvalues from 0 to 255. For example here I've 2*255, 2*127, 5*34 and so on.

So I've created an int histogram[] = new int [255];

To test if my colorvalues are correct I wrote:

 for(int i=0; i < colorvalues.length; i++){
	 for (int j = 0; j < colorvalues.length; j++){
		 System.out.println("Colorvalue in Array " + i + "." + j + " is" + colorvalues[i][j]);
	 }
 }

So far, so good. Now, how do I write a procedure that goes in histogram[255] from 0 to 255, and compares it to the value of colorvalues[][], and if, for example, histogram[34] compares to colorvalues[][] it adds 5 to histogram[34]. Because there's 5 times 34 in colorvalues[][].

Maybe my thinking is wrong and I was supposed to have histogram[255][], 255 for colorvalues from 0 to 255 and the other for the counter. Even then, how do I realize it?

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2 Answers

up vote 3 down vote accepted

You actually shouldn't iterate over the histogram and for every possible value iterate over the image. Iterating over the image should be enough:

for(int i=0; i < colorvalues.length; i++){
     for (int j = 0; j < colorvalues.length; j++){
             histogram[colorvalues[i][j]]++;
     }
}

You can simply take the lightness value in your image as an index into the histogram array.

And you don't need to create an array of arrays just to save the counter. Remember that an array is nothing more than a list of "cells" for a certain value. an int[] is just a range of "cells" that can hold an integer value. That's your count. The index into that list of cells is your brightness value for the histogram. For every array you have those two pieces of information: An index of the cell and the value in that cell. You just need to figure out how to use both.

And as PSpeed notes in the comment, you may want to make sure that the code won't actually try accessing values outside the boundaries of that array:

if (colorvalues[i][j] >= 0 && colorvalues[i][j] <= 255) {
    histogram[colorvalues[i][j]]++;
}

That is needed because your color values are ints, that is, they can hold values from −2147483648 to 2147483647. Which is a way larger range than what your histogram can accommodate. So if a color value happens to be 3456 for example, the program would stop in the loop because of an ArrayIndexOutOfBoundsException. Because the code trid to access a value in the histogram array with index 3456 which is way beyond the maximum usable index of 255.

ETA: As for your histogram being int[255]: I totally overlooked that one, sorry. When creating a new array in Java, you specify the length, not the maximum index. So whatever you use there is larger by exactly one than the maximum index that can be used in the array. So new int[256] is an array that has indexes from 0 through 255.

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And you may want to range check the colorvalues[i][j] since it can be considerably larger than histogram's size if colorvalues gets filled with bogus values. That is, if you want to handle that care gracefully. –  PSpeed Nov 29 '09 at 16:37
    
@PSpeed: Pardon, what? –  NoCanDo Nov 29 '09 at 16:40
    
NoCanDo: Elaborated on that point a bit. –  Јοеу Nov 29 '09 at 16:46
    
Okay, this works, but I'm still not clear why I had to increase it to "int histogram[] = new int [256];" 256 not 255. I thought Arrays started at 0? –  NoCanDo Nov 29 '09 at 16:47
    
NoCanDo: Sorry, overlooked that one. See edit. –  Јοеу Nov 29 '09 at 17:09
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I'd be tempted to add the histogram values into a TreeMap where the map key is the colour value and the map value is the count.

The map will increase in size automatically, no problems with index out of bounds etc. it will be sorted automatically into size order.

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Thanks, but one step at a time ;). Still learning Java. –  NoCanDo Nov 29 '09 at 18:00
    
No problem. Another tip would be to write a unit test for your class. This will save you a lot of pain and its a fairly simple technique. –  Fortyrunner Nov 29 '09 at 22:52
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