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Given Iterator< Element >, how can we convert that iterator to ArrayList< Element > (or List< Element >) the best and fastes way possible so that we can use ArrayList's operations on it such as get(index), add(element), etc.

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7 Answers 7

up vote 86 down vote accepted

Better use a library like Guava:

import com.google.common.collect.Lists;

Iterator<Element> myIterator = ... //some iterator
List<Element> myList = Lists.newArrayList(myIterator);

or Apache Commons Collections:

import org.apache.commons.collections.IteratorUtils;

Iterator<Element> myIterator = ...//some iterator

List<Element> myList = IteratorUtils.toList(myIterator);       
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2  
For commons-collections, it's org.apache.commons.collections.IteratorUtils.toList(Iterator). –  yihtserns Feb 1 '13 at 12:37
    
Thanks Zefi, just edited the answer –  Renaud Feb 4 '13 at 8:58
1  
I don't get it. In what way is the ArrayList returned by, say, Guava any better than a normal ArrayList? Do they do it in a more efficient way? Even if it is more efficient is it really worth adding an extra dependency (and more complexity) to your project? –  CorayThan Feb 24 '13 at 23:16
    
@CorayThan with "a normal ArrayList", you mean like the solutions of Oscar Lopez? –  Renaud Feb 25 '13 at 13:21
2  
@CorayThan less code + tested methods. Though I agree with you I would not add an extra dependency just to use that method. But then again, most of my (large) projects use either Guava or Apache Commons... –  Renaud Feb 25 '13 at 22:31

You can copy an iterator to a new list like this:

Iterator<String> iter = list.iterator();
List<String> copy = new ArrayList<String>();
while (iter.hasNext())
    copy.add(iter.next());

That's assuming that the list contains strings. There really isn't a faster way to recreate a list from an iterator, you're stuck with traversing it by hand and copying each element to a new list of the appropriate type.

EDIT :

Here's a generic method for copying an iterator to a new list in a type-safe way:

public static <T> List<T> copyIterator(Iterator<T> iter) {
    List<T> copy = new ArrayList<T>();
    while (iter.hasNext())
        copy.add(iter.next());
    return copy;
}

Use it like this:

List<String> list = Arrays.asList("1", "2", "3");
Iterator<String> iter = list.iterator();
List<String> copy = copyIterator(iter);
System.out.println(copy);
> [1, 2, 3]
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You can also use IteratorUtils from Apache commons-collections, although it doesn't support generics:

List list = IteratorUtils.toList(iterator);
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List result = new ArrayList();
while (i.hasNext()){
    result.add(i.next());
}
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what's with this code? it doesn't even compile –  Luiggi Mendoza Apr 12 '12 at 3:41
    
The code is fine. In his case i is an Iterator<Element> –  Maksim Apr 12 '12 at 3:43
    
it should be in the code like @OscarLopez has done –  Luiggi Mendoza Apr 12 '12 at 3:45
    
@LuggiMendoza: Stack Overflow is not meant to be a place where you can just cut and paste and solve your problem. It is meant to be informative. This is a perfectly informative answer and any reasonable person should be able to put it together that the i was an iterator. From the sounds of it, you put almost no effort into trying to understand what was going on. –  CaTalyst.X Jul 10 '13 at 20:39

use google guava !

Iterable<String> fieldsIterable = ...
List<String> fields = Lists.newArrayList(fieldsIterable);

++

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Iterator (not Iterable) to ArrayList –  Chthonic Project Aug 2 '13 at 17:39

Pretty concise solution with plain Java 8 using java.util.stream:

public static <T> ArrayList<T> toArrayList(final Iterator<T> iterator) {
    return StreamSupport.stream(Spliterators.spliteratorUnknownSize(iterator, Spliterator.ORDERED), false)
                        .collect(Collectors.toCollection(ArrayList::new));
}
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Here in this case if you want the fastest way possible then for loop is better.

The iterator over a sample size of 10,000 runs takes 40 ms where as for loop takes 2 ms

        ArrayList<String> alist = new ArrayList<String>();  
        long start, end;  

        for (int i = 0; i < 1000000; i++) {  
            alist.add(String.valueOf(i));  
        }  

        ListIterator<String> it = alist.listIterator();      

        start = System.currentTimeMillis();  
        while (it.hasNext()) {  
            String s = it.next();  
        }  
        end = System.currentTimeMillis();  

        System.out.println("Iterator start: " + start + ", end: " + end + ", delta: "  
            + (end - start));  
        start = System.currentTimeMillis();  
        int ixx = 0;  
        for (int i = 0; i < 100000; i++) {  
            String s = alist.get(i);  
        }  

        System.out.println(ixx);  
        end = System.currentTimeMillis();  
        System.out.println("for loop start: " + start + ", end: " + end + ", delta: "  
            + (end - start));  

That's assuming that the list contains strings.

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2  
Surely using a for loop and accessing a list's elements with get(i) is faster than using an iterator... but that's not what the OP was asking, he specifically mentioned that an iterator is given as input. –  Óscar López Apr 12 '12 at 3:51
    
@Oscar i am sorry.Should i delete my answer? –  vikiiii Apr 12 '12 at 3:52
    
That's your call. I wouldn't delete it yet, it might be informative. I only delete my answers when people start to downvote them :) –  Óscar López Apr 12 '12 at 3:54
    
@Oscar thanks.then i will wait for the first down vote.:) –  vikiiii Apr 12 '12 at 3:55
    
Yes, Iterator was given as input, @ÓscarLópez was right. –  Maksim Apr 12 '12 at 4:18

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