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I have a 2 dimensional array, that has dimensions of myArray[x][3]. I need to sort the array based upon [x][0]. I was using Arrays.sort(myArray);. That was working, however, the array at the time was a one dimension array of myArray[x]. Then I changed my mind and changed it into a 2 dimensional array. It is filled with integers from 1 to 9. I have searched for the clear method to sort 2 dimensional arrays, and cannot find the simple explanations. Please help.

Thanks; Ice

Ok, here is the code:

public static void sortArray(int myArray[][]){
Arrays.sort(myArray, new Comparator<Integer[]>(){
    @Override
    public int compare(Integer[] o1, Integer[] o2) {
        return o1[0].compareTo(o2[0]);
    }
});

Did that work?

OK, here is the problem. The sorted array starts out unsorted, like this:

3 - 0 - 0
4 - 0 - 1
5 - 0 - 2
6 - 0 - 3
3 - 0 - 4

The first column [0][x] is the value, the second column [1][x] is the array field count, and the last column [2][x] is the actual column number in the array. The overall method, takes a entire row from the original 2 dimensional array, and loads it into a 3-tall by x-wide array, then sorts the array based on the [0][x] column. Here is the result after the sort function now being called:

0 - 0 - 3
0 - 1 - 4
0 - 2 - 5
0 - 3 - 6
0 - 4 - 3

Somehow, the method I copied and pasted, is swapping out the numbers, seems like the sorting is wrong. Same System.out.print is being used on both outputs.

share|improve this question
    
Do you want the entire 2-D array sorted as a whole, or do you want each row of the array sorted individually? –  birryree Oct 26 '11 at 20:14
    
You mean that you want to sort the array column wise ? –  rohit89 Oct 26 '11 at 20:16
    
I need the array to be sorted based upon column 0, keeping the columns bound together. The first column contains the value, the second column contains basically a x co-ordinate, the third column contains basically the y value, so, yes, they need to stay together. The first column is what needs to be sorted, from smallest to largest. –  IceRegent Oct 26 '11 at 20:19
    
You can adapt the answer from this question: stackoverflow.com/questions/4907683/… into your data type. It sorts on the first column. –  birryree Oct 26 '11 at 20:21
    
ok, I will go look at that and see how it can be adapted. Thanks –  IceRegent Oct 26 '11 at 20:22

2 Answers 2

If I got it right:

    Integer[][] numbers = new Integer[][]{{7, 8, 9}, {1, 2, 3}};
    System.out.println("Before:");
    for(Integer[] row : numbers) {
        for(Integer num : row) {
            System.out.print(num);
        }
        System.out.println("");
    }

    Arrays.sort(numbers, new Comparator<Integer[]>(){
        @Override
        public int compare(Integer[] o1, Integer[] o2) {
            return o1[0].compareTo(o2[0]);
        }
    });
    System.out.println("After:");
    for(Integer[] row : numbers) {
        for(Integer num : row) {
            System.out.print(num);
        }
        System.out.println("");
    }

Prints:

Before:
789
123
After:
123
789

Update:

This exactly what you need.

public static void sortArray(int myArray[][]) {
    Arrays.sort(myArray, new Comparator<int[]>() {

        @Override
        public int compare(int[] o1, int[] o2) {
            return Integer.valueOf(o1[0]).compareTo(Integer.valueOf(o2[0]));
        }

    });
}

Update2:

Sorting each row:

public static void sortEachRow(int myArray[][]) {
    for(int[] row : myArray) {
        Arrays.sort(row);
    }
}
share|improve this answer
    
Here is what I have placed into a method, so that i can call it to make it work...codepublic static void sortArray(int myArray[][]){ Arrays.sort(numbers, new Comparator<Integer[]>(){ @Override public int compare(Integer[] o1, Integer[] o2) { return o1[0].compareTo(o2[0]); } }); }code –  IceRegent Oct 26 '11 at 20:37
    
ok how do i post that as in the posting original format? –  IceRegent Oct 26 '11 at 20:40
    
@IceRegent: Update your post with method. Also, you forgot tell what problem you are having now. –  Bhesh Gurung Oct 26 '11 at 20:40
    
@IceRegent: Click the link edit. –  Bhesh Gurung Oct 26 '11 at 20:41
    
I apologize, I am not finding how to update the post with method. The problem is, I am getting errors when I place that code into my method in my netbeans. the "Arrays.sort(numbers, new Comparator<Integer[]>(){", the word "numbers" is underlined, but, obviously, I replace it with my array name, myArray, and then the entire line of code gets underlined. –  IceRegent Oct 26 '11 at 20:44

This should work.

public static void main(final String[] args) 
{
    Integer[][] numbers = new Integer[][] {{7, 8, 9}, {1, 2, 3}};
    sortArray(numbers);
    for (Integer[] s : numbers) {
        System.out.println(s[0] + " " + s[1] + " " + s[2]);
    }
}

public static void sortArray(Integer myArray[][])
{ 
    Arrays.sort(myArray, new Comparator<Integer[]>()
    { 
            @Override 
            public int compare(Integer[] o1, Integer[] o2) 
            {
                    return o1[0].compareTo(o2[0]); 
            } 
    }); 
}
share|improve this answer
    
Seems to give no errors, but when i try to pass my array from inside my other code, it underlines in red as in an error condition: sortArray(myArray); –  IceRegent Oct 26 '11 at 21:03
    
Not sure I understand. The parameter should be numbers not myArray. Or did you mean that sortArray(numbers) gives an error ? –  rohit89 Oct 26 '11 at 21:10
    
No, in the first part, you are creating an array and filling it, then displaying it with your name of the array. I already have an array created, actually i am working with 3 different arrays, but i just need to sort one of them right now. The name of the array I need to sort, is called myRows. So, when I call the method sortArray, I need to pass the actual array of "myRows". –  IceRegent Oct 26 '11 at 21:18
    
Are the arrays declared as Integer not int? The declaration for sortArray also has Integer as parameter. –  rohit89 Oct 26 '11 at 21:28
    
the arrays are declared as int. –  IceRegent Oct 26 '11 at 21:35

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