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Can anyone explain me what the following statement from the below code means..??

for (j = 0; j < arrayOfInts[i].length; j++)

I'm learning Java language and having a very hard time figuring it out..

class BreakWithLabelDemo {
        public static void main(String[] args) {

            int[][] arrayOfInts = { 
                { 32, 87, 3, 589 },
                { 12, 1076, 2000, 8 },
                { 622, 127, 77, 955 }
            };
            int searchfor = 12;

            int i;
            int j = 0;
            boolean foundIt = false;

        search:
            for (i = 0; i < arrayOfInts.length; i++) {
                for (j = 0; j < arrayOfInts[i].length;
                     j++) {
                    if (arrayOfInts[i][j] == searchfor) {
                        foundIt = true;
                        break search;
                    }
                }
            }

            if (foundIt) {
                System.out.println("Found " + searchfor + " at " + i + ", " + j);
            } else {
                System.out.println(searchfor + " not in the array");
            }
        }
    }
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6 Answers

up vote 0 down vote accepted

In Java two-dimensional arrays are implemented is a one-dimensional array of one-dimensional arrays.

for (j = 0; j < arrayOfInts[i].length; j++)

arrayOfInts[i].length means length of the ith row of an arrayOfInts.

int[][] a = new int[2][4]; 

This two-dimensional array will have two rows and four columns. This actually allocates 3 objects: a one-dimensional array of 2 elements to hold each of the actual row arrays, and two one-dimensional arrays of 4 elements to represent the contents of the rows.

 +-----+    +-----+-----+-----+-----+
 |a[0] | -> | [0] | [1] | [2] | [3] |
 |     |    +-----+-----+-----+-----+    In Java two-dimensional arrays are implemented is a  
                                        one-dimensional array of one-dimensional arrays -- like this.
 +-----+
 |     |    +-----+-----+-----+-----+
 |a[1] | -> | [0] | [1] | [2] | [3] |
 +-----+    +-----+-----+-----+-----+
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Java doesn't really have multidimensional arrays, it has arrays that can contain other arrays. That code takes the ith item from the misleadingly named arrayOfInts. This item is itself an array of integers, so it's taking the length of this array. (That was stored in another array.) So, for example in this code:

int[][] array2d = new int[][] {
    new int[] {1},      // stored at array2d[0]
    new int[] {2, 3, 4} // stored at array2d[1]
}

the following are true:

  • array2d.length == 2 (The "multidimensional" array contains two other arrays.)
  • array2d[0].length == 1 (The first of which has one element: 1.)
  • array2d[1].length == 3 (The second has three elements: 2, 3, 4.)
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There is no multidimensional array in Java. All there is is arrays of arrays.

arrayOfInts is such an array of arrays of ints. So arrayOfInts[i] is an array of ints, and

for (j = 0; j < arrayOfInts[i].length; j++)

iterates over every element of this array, i.e. it iterates over all the elements in the array of ints stored at the index i of the array of arrays of ints.

You could see it as a big box containing N smaller boxes, each smaller box containg a given number of integers. arrayOfInt is the big box. arrayOfInt[i] is the ith smaller box in the big box. And the loop iterates over every integer in this smaller box.

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There is no multidimensional array in Java. In what language there is multidimensional arrays, all there is only array of arrays.But, it is called as multidimensional arrays.There is no difference between multidimensional arrays and array of arrays. –  Govind Balaji Feb 16 '13 at 13:19
1  
Pascal has multidimensional arrays, as well as C#, for example. I'm sure other languages do have them as well. The main difference is that all the rows in a multidimensional array have the same length, which is not the case in an array of arrays. Another one is that a row may not be null in a multi-dimensional array, whereas it can be in an array of arrays. –  JB Nizet Feb 16 '13 at 13:34
    
Multidimensional array is same as array of arrays.in a 2d array having 2 arrays, if all the 1d arrays have equal length, though it will be called`array of arrays`.<br>Else even if one 1d array has different no. of elements than another, it is also array of arrays, but it is jagged –  Govind Balaji Feb 17 '13 at 3:14
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j = 0; j < arrayOfInts[i].length

Cause you array is 2-dimensional, inner element of array will be array to.

So you getting the element(which is array) arrayOfInts[i] and calculates the length arrayOfInts[i].length, in other words:

int[] element = arrayOfInts[i]; int length = arrayOfInts[i].length;

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Think of arrayOfInts[i][j] as a two-dimensional grid, like a spreadsheet. To help visualize, let's say that [j] represents the column index, and [i] represents the row index.

The explanation is then:

// iterate through every column j in the current row i:
for (j = 0; j < arrayOfInts[i].length; j++)
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In your code , see the words int [][]arrayOfInts=...
It is a 2-dimensional array.
2 dimensional arrays are nothing but arrays of arrays
It means simply there will be many normal 1-d arrays, and another array having references of each 1-d array.
So, the explanation of line, for(j=0;j<arrayOfInts[i].length;j++)is given below:
first, lets give focus to the wordsarrayOfInts[i].length
I already told you arrayOfInts is an array of arrays. So, arrayOfInts[i] points to the ith array.The word,arrayOfInts[i].length returns the length(i.e number of elements in an array) in the ith array of arrayOfInts.
The loop continues to happen until the j is less than then number of elements in the 1d array(less than (don't use equal to) because arrayOfInts[i][0] will be the first element).

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