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I am not sure how to make this method push items down instead of overwrite them. Right now, if I have an array of 10 items:

[0] = zero
[1] = one
[2] = two
...
[10] = ten 

and I insert an item at index [2], what happens is the following:

[0] = zero
[1] = one
[2] = two
[3] = two
[4] = two
 ...  
[10] = two 

It overwrites all items after the selected index, instead of push them down by an index. Why is this happening and how do I fix it? Thanks.

public void insert(int i, String s) {

if (array[i] == null) {
    array[i] = s;spot on the list.
} else { 
    for (int j = i; j < array.length - 1; j++) {
        array[j + 1] = array[j]; 

        if (j == array.length - 1) { 
            break;
        } 
    }
    array[i] = s;
    extendArray();
share|improve this question
    
Try debbuging it. It will help you learn java more easily... –  BobTheBuilder Nov 13 '13 at 15:43
    
You realize that in Java arrays don't automatically resize, so if your program ever enters into if (array[i] == null) {array[i] = s;} then your program will crash. You have to create a new array of increased size. –  dataNinja124 Nov 13 '13 at 15:51

4 Answers 4

up vote 1 down vote accepted

You're pushing the changed indices.

"array[j + 1] = array[j]; " after you changed array[j] (which is == to array[i] at the beginning of the for loop).

But look at this:

ar = [1,2,3]

Inserting in position 1 means I'll make ar[2]=ar[1].

How to do it? Pull instead of push. Make the loop go down from array.length-1 to the index you want to change.

//check if you need to grow the array first.
for (int j = array.length-1; j > i; j--) {
    array[j] = array[j-1]; 
}
//and now insert.
share|improve this answer

If you want to "push" items instead of "overwriting" them, then you shouldn't use an array, this job is easier using an ArrayList:

List<Integer> lst = new ArrayList<Integer>();
lst.add(1);
lst.add(3);
lst.add(4);
lst.add(1, 2); // "push" the elements to the right, making room for 2

In the above example, at the end lst will contain 1, 2, 3, 4

share|improve this answer
    
The question is regarding the algorithm, though, so... wouldn't make much sense to use a data structure which makes the algorithm useless. Besides, what do you think the ArrayList does internally? –  iajrz Nov 13 '13 at 15:49
1  
@iajrz in any real production system, you would never write this algorithm yourself. –  Cruncher Nov 13 '13 at 15:51
    
@iajrz precisely, why reinvent the wheel, if ArrayList does exactly the same, under the hood? –  Óscar López Nov 13 '13 at 15:52
    
Didn't imply that. And neither did the OP. The question was "I am not sure how to make this method push items down instead of overwrite them.". But it's OK... I just hoped you'd answer the question and counsel, not just counsel. –  iajrz Nov 13 '13 at 15:53
1  
@ÓscarLópez: you mean to tell me you never, even once, wrote a sorting algorithm? Or a search algorithm? or a tree balancing algorithm? There's a reason to do it: to learn! –  iajrz Nov 13 '13 at 15:56

The problem is in your replacement :

 array[j + 1] = array[j]; 

Take an example : if you are with j = 0 then you replace array[1] with the value in array[0] Then on the next step of your loop you replace the value of array[2] with the value of array[1] which has been replaced by the value of array[0].

You should process your array starting by the end (decreasing j from array.length to j=i) and you should be fine.

share|improve this answer
    
Exactly what I was about to say! +1 –  NickJ Nov 13 '13 at 15:46

You can change the for-loop condition

From

for (int j = i; j < array.length - 1; j++) {

            array[j + 1] = array[j]; 

To

for(int j=array.length-2;j>=i;j--){

            array[j + 1] = array[j];

With this change, the following information will be displaying in Console:

[zero, one, two, two, three, four, five, six, seven, eight, nine]
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