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While looping through a list, I would like to remove an item of a list depending on a condition as below

This is giving me concurrentModification exception

for(Object a: list){
    if(a.getXXX().equalsIgnoreCase("AAA")){
        logger.info("this is AAA........should be removed from the list ");
        list.remove(a);

    }
}

How this should be handled

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marked as duplicate by sp00m, Luiggi Mendoza, Reimeus, PermGenError, Martin Jun 24 '13 at 16:09

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
You cannot remove an element from a list while you're iterating over said list. Make a copy and remove items from that instead, or do it directly to the iterator. –  thegrinner Jun 24 '13 at 15:43

6 Answers 6

up vote 17 down vote accepted

You need to use Iterator and call remove() on iterator instead of using for loop.

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Thanks all for your responses –  Techie Jun 24 '13 at 15:50
1  
@Techie: you are welcome. Good luck! –  Nambari Jun 24 '13 at 15:57
for (Iterator<String> iter = list.listIterator(); iter.hasNext(); ) {
    String a = iter.next();
    if (...) {
        iter.remove();
    }
}

Making an additional assumption that the list is of strings. As already answered, an list.iterator() is needed. The listIterator can do a bit of navigation too.

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You can't and shouldn't modify a list while iterating over it. You can solve this by temporarely saving the objects to remove:

List<Object> toRemove = new ArrayList<Object>();
for(Object a: list){
    if(a.getXXX().equalsIgnoreCase("AAA")){
        toRemove.add(a);
    }
}
list.removeAll(toRemove);
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You cannot do it because you are already looping on it.

Inorder to avoid this situation use Iterator,which guarentees you to remove the element from list safely ...

List<Object> objs;
Iterator<Object> i = objs.iterator();
while (i.hasNext()) {
   Object o = i.next();
  //some condition
    i.remove();
}
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3  
It's i.remove(). –  sp00m Jun 24 '13 at 15:47
    
@sp00m Thankyou.Did'nt notice.Edited. –  sᴜʀᴇsʜ ᴀᴛᴛᴀ Jun 24 '13 at 15:50
//first find out the removed ones

List removedList = new ArrayList();
for(Object a: list){
    if(a.getXXX().equalsIgnoreCase("AAA")){
        logger.info("this is AAA........should be removed from the list ");
        removedList.add(a);

    }
}

list.removeAll(removedList);
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1  
Why so complicated... –  m0skit0 Jun 24 '13 at 15:43
2  
Its not complicated. Its another way to remove one list from another. –  Makky Jun 24 '13 at 15:45
1  
You're creating a new object when you don't need to, and probably looping the list twice as well. –  m0skit0 Jun 24 '13 at 16:05

Besides all the excellent solutions offered here I would like to offer a different solution.

I'm not sure if you're free to add dependencies, but if you can, you could add the https://code.google.com/p/guava-libraries/ as a dependency. This library adds support for many basic functional operations to Java and can make working with collections a lot easier and more readable.

In the code I replaced the type of the List by T, since I don't know what your list is typed to.

This problem can with guava be solved like this:

List<T> filteredList = new Arraylist<>(filter(list, not(XXX_EQUAL_TO_AAA)));

And somewhere else you then define XXX_EQUAL_TO_AAA as:

public static final Predicate<T> XXX_EQUAL_TO_AAA = new Predicate<T>() {
    @Override
    public boolean apply(T input) {
        return input.getXXX().equalsIgnoreCase("AAA");
    }
}

However, this is probably overkill in your situation. It's just something that becomes increasingly powerful the more you work with collections.

Ohw, also, you need these static imports:

import static com.google.common.base.Predicates.not;
import static com.google.common.collect.Collections2.filter;
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