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I was using Arrays.sort() function to sort 2d array (int[][] array). Since I want to sort it base on the first element. For example, {{2,3},{1,4}} base on 1st element the array will be {{1,4},{2,3}}. So I override the compare function.

Arrays.sort(arr, new Comparator<int[]>() {

    @Override
    public int compare(int[] o1, int[] o2){
        if(o1[0] < o2[0]){
            return -1;
        } else if (o1[0] > o2[0]) {
            return 1;
        } else {
            return 0;
        }
    }

})

I know this sort work. But I don't understand how this compare work. I was thinking the

new Comparator<int[]>  

should be

new Comparator<int[][]>

since this is 2d array. and inside of compare function should be compare

o1[0][0]  and  o2[0][0]

Can anyone help me understand it?

Also this is using Arrays.sort, can I use Collections.sort? what is different between it?

Thanks

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  • FYI: To get a compare value from comparing two int values, use Integer.compare(o1[0], o2[0])
    – Andreas
    Apr 11 '20 at 0:04
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Remember that a "2D array" doesn't actually exist in Java, so what you're really dealing with is "an array of int[]" (there's nothing inherently preventing each of those int[] from being a different length).

So: when you sort, you're comparing individual elements of that "array of int[]" with each other, and because each element is an int[], your Comparator is for int[], too.

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You are passing the array in the sort method and giving it a comparator. Arrays.sort will use iterator to pass into compare method. So compare method is checking element at arr[0].compare(arr[1]) sorts these 2 and goes to next iterator. same concept applies using 2d array. You are just passing 2 arrays and telling compare who should be placed where.

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