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I have 2 lists, and depending on a parameter I remove an element from 1 of the 2 lists. I then loop through the lists for additional processing. However even though the list has lost 1 element, the list.size() is still the same causing a java.lang.IndexOutOfBoundsException. Is there anything I can do to fix this?

    System.out.println(high_list_price.size());

    if(first_hit.equals("low")){
        high_list_date.remove(high_list_date.size()-1);
        high_list_price.remove(0);
        high_list_percent.remove(0);
    }
    if(first_hit.equals("high")){

        low_list_date.remove(low_list_date.size()-1);
        low_list_price.remove(0);
        low_list_percent.remove(0);
    }

    System.out.println(high_list_price.size());

    for(int tt = 0;tt < low_list_date.size();tt++){
        System.out.println(low_list_date.get(tt)+"|"+low_list_price.get(tt));
    }

    for(int ii = 0; ii < high_list_date.size();ii++){
        System.out.print(high_list_date.get(ii)+"|");
        System.out.println(+high_list_price.get(ii));
    }

high_list_price.size() = 51 both before and after the .remove, yet high_list_date.size() goes from 51 to 50, why is that?

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3  
array.size()? In any case, did you actually remove anything? size() will return the current size. –  Dave Newton Jan 27 '12 at 18:10
    
How are you creating these lists? Are they backed by arrays? –  Paul Tomblin Jan 27 '12 at 18:11
2  
I suspect you error does not come from the code you have pasted here. It must be something else. –  ChrisJ Jan 27 '12 at 18:12
    
post more code! –  soulcheck Jan 27 '12 at 18:16
1  
The code you posted has no error in it (other than when size() returns 0). consider posting the code that you replaced with an ellipsis in the loops. –  DwB Jan 27 '12 at 18:18

3 Answers 3

up vote 2 down vote accepted

If you iterate through ArrayLists backwards, you can delete the current element without worrying about what comes after.
Another option is to iterate through, make a list of things to delete, then delete those elements form the original list.

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you may want to use an ArrayList instead of an plain array. It provides additional functions like remove(Object o)

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As an addition to the valid options provided by @z5h there, consider using the Iterator interface, which includes a remove() method that removes the item from the underlying collection without causing the kinds of problems that using Collection.remove() causes.

Using Iterator might help you walk through your collections in a more readable fashion, as well.

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