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I've written some code that I think should be failing under certain conditions, but it's not. I'm doing an arraycopy() which in some cases will ask for a copy to an out-of-bounds index, but in all such cases the length passed to arraycopy() would be 0.

My only guess is that Java's implementation of arraycopy() checks if length = 0 first, and if so returns without checking the index arguments? I can't find any reference to how the internals of arraycopy() work.

If this is the way Java implements it though, and the code works fine, my gut tells me that I should still write the code so this doesn't happen. Should I be worried about this?

The code is:

if (manyItems == data.length) {
        ensureCapacity(manyItems * 2 + 1); 
    }
    if (manyItems == currentIndex) {
        data[currentIndex] = element;
    } 
    else {   // if data.length = 10, manyItems = 9, currentIndex = 8,
                     //   currentIndex + 2 = 10, which is out of bounds.
                     //   But manyItems - currentIndex -1 = 0, so nothing is copied.
        System.arraycopy(data, currentIndex + 1, data, currentIndex + 2,
            manyItems - currentIndex - 1);
        data[currentIndex + 1] = element;
        currentIndex++;
    }

Seems odd to me, but maybe I'm not thinking it through correctly? Should I just ensure capacity with manyItems >= data.length-1?

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1 Answer 1

up vote 1 down vote accepted

The indices are tested even if the length is 0. An index can be out of bounds if it is the length of the array, but anything larger triggers an ArrayIndexOutOfBoundsException.

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OK, thanks, I think I understand now. The destination index isn't tested as a valid index of the array, but tested to make sure index + length <= array.length. –  Trent Feb 27 '11 at 2:56

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