Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Why java.lang.IndexOutOfBoundsException is raised in this example, if the size of ArrayList has been predefined? How to solve this problem?

int size = 2:
ArrayList<Integer[]> nums = new ArrayList<Integer[]>(size);
Integer[] value1 = {1,2,3};
Integer[] value2 = {1,2};
nums.add(1,value1); // java.lang.IndexOutOfBoundsException
nums.add(0,value2);
share|improve this question

6 Answers 6

up vote 10 down vote accepted

You cannot put an item in an ArrayList before the other one is set. If you want to do it you'll have to assign null values to the item on place 0 first.

It will work if you do:

int size = 2:
ArrayList<Integer[]> nums = new ArrayList<Integer[]>(size);
Integer[] value1 = {1,2,3};
Integer[] value2 = {1,2};
nums.add(0, null);
nums.add(1,value1);
nums.set(0,value2);

edit/ Replaced add by set to replace the null object

share|improve this answer
1  
To be more clear, it's really that you can't insert an item at an index that doesn't yet exist. –  Dave Newton Jan 4 '12 at 16:01
3  
Not to second guess the wisdom here, but doesn't the 3rd add() in the above solution shift the contents, such that value1 is now at index 2, not 1? The doc on add() with an index indicates so. I believe the array contents after this would be {value2,null,value1}. –  rfeak Jan 4 '12 at 16:32

The argument to the ArrayList constructor isn't the size of the list, as your code is assuming; it's the capacity of the underlying storage used by the data structure.

The capacity will grow as required as you add elements to the list. The only reason to specify the initial capacity in the constructor is to pre-allocate a larger capacity if you know you're going to be adding lots of elements. This means that the underlying array doesn't havwe to be resized too often as you add them.

Regardless of what value you specify in the ArrayList constructor, the size of the list is governed solely by what you put into it, so you can't fetch the item with index of 1 until you've added at least 2 elements.

share|improve this answer

At the time that you add() to the ArrayList, the length of the list is 0. You cannot add past the current end of the List.

I would suggest doing:

nums.add(value2);
nums.add(value1); 

To get the order you appear to want here.

share|improve this answer
    
It won't work for my case, because I might need to add a certain element at position 5, the next at position 2, the next at position 7, etc. –  Klausos Klausos Jan 4 '12 at 16:12
    
@KlausosKlausos - It's sounding like you don't really want an ArrayList, at least not initially. It may be better to start with an plain array of certain size, do all your inserts by index so you don't have to play funny games with the ArrayList, THEN put the Array into an ArrayList. Also, be aware that add() at an index causes a shift in the existing contents of the array. Adding at position 5, then position 2 changes what you inserted at 5 to now be at 6. –  rfeak Jan 4 '12 at 16:29

http://docs.oracle.com/javase/7/docs/api/java/util/ArrayList.html#ArrayList(int)

What you specify it's the initial capacity, that's just the initial size that the internal array has and that is increased automatically if need be. It has nothing to do with item position, hence your error. By the way, the default capacity for ArrayLists is 10, so you are actually making it smaller than default.

share|improve this answer

To get the result you want to have, you have to write

nums.add(0, value1);
nums.add(0, value2);
share|improve this answer

According to the javadoc, When you write

ArrayList<Integer[]> nums = new ArrayList<Integer[]>(size);

You're not defining the size of nums, you're defining the initial capacity - in this sense, ArrayLists aren't like built-in arrays (value1 and value2 in your code).

You can try it yourself: print the size of nums after each line (code cleaned up to prevent the IndexOutOfBoundsException.

int size = 2:
ArrayList<Integer[]> nums = new ArrayList<Integer[]>(size);
Integer[] value1 = {1,2,3};
Integer[] value2 = {1,2};
System.out.println(nums.size());
nums.add(value2);
System.out.println(nums.size());
nums.add(value1);
System.out.println(nums.size());

This will print:

0
1
2
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.