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.

Given the following code snippet:

int[] arr = {1, 2, 3};
for (int i : arr)
    System.out.println(i);

I have the following questions:

  1. How does the above for-each loop work?
  2. How do I get an iterator for an array in Java?
  3. Is the array converted to a list to get the iterator?
share|improve this question
2  
that moment you decide not to vote up to preserve the 42 votes.... –  AdrieanKhisbe Mar 24 at 11:27

10 Answers 10

up vote 39 down vote accepted

If you want an Iterator over an array, you could use one of the direct implementations out there instead of wrapping the array in a List. For example:

Apache Commons Collections ArrayIterator

Or, this one, if you'd like to use generics:

com.Ostermiller.util.ArrayIterator

Note that if you want to have an Iterator over primitive types, you can't, because a primitive type can't be a generic parameter. E.g., if you want an Iterator<int>, you have to use an Iterator<Integer> instead, which will result in a lot of autoboxing and -unboxing if that's backed by an int[].

share|improve this answer
9  
Why the downvote? At least indicate your point of disagreement. What I say here addresses the first question asked, namely, how to get an Iterator for an array. –  uckelman Oct 12 '10 at 15:51

No, there is no conversion. The JVM just iterates over the array using an index in the background.

Quote from Effective Java 2nd Ed., Item 46:

Note that there is no performance penalty for using the for-each loop, even for arrays. In fact, it may offer a slight performance advantage over an ordinary for loop in some circumstances, as it computes the limit of the array index only once.

So you can't get an Iterator for an array (unless of course by converting it to a List first).

share|improve this answer
1  
ok how can i get an iterator for an array? –  Emil Oct 12 '10 at 8:30
2  
Yes, +1 It's prolly just a regular for. @Emil, you can't. –  st0le Oct 12 '10 at 8:32
Arrays.asList(arr).iterator();

Or write your own, implementing ListIterator interface..

share|improve this answer
16  
Arrays.asList() can not take an int[], only Object[] and subclasses. –  ILMTitan Oct 12 '10 at 18:04
    
this is wrong. this returns a List<int[]>, and hence an Iterator<int[]>, not a List<Integer>! –  njzk2 Jun 19 at 18:11

Google Guava Libraries collection provides such function:

Iterator<String> it = Iterators.forArray(array);

One should prefere Guava over the Apache Collection (which seems to be abandoned).

share|improve this answer
    
This is usually the best answer except when we're dealing with array of primitives (such as int[]) then this no longer works :( since we can't specify Iterator<int> or Iterator<Integer> –  chakrit Apr 10 at 11:42
public class ArrayIterator implements Iterator {
  private Object array[];
  private int pos = 0;

  public ArrayIterator(Object anArray[]) {
    array = anArray;
  }

  public boolean hasNext() {
    return pos < array.length;
  }

  public Object next() throws NoSuchElementException {
    if (hasNext())
      return array[pos++];
    else
      throw new NoSuchElementException();
  }

  public void remove() {
    throw new UnsupportedOperationException();
  }
}
share|improve this answer

Strictly speaking, you can't get an iterator of the primitive array, because Iterator.next() can only return an Object. But through the magic of autoboxing, you can get the iterator using the Arrays.asList() method.

Iterator<Integer> it = Arrays.asList(arr).iterator();

The above answer is wrong, you can't use Arrays.asList() on a primitive array, it would return a List<int[]>. Use Guava's Ints.asList() instead.

share|improve this answer
    
+1: Ints.asList(array) works nicely for me. –  sharky Mar 29 '13 at 2:55

You can't directly get an iterator for an array.

But you can use a List, backed by your array, and get an ierator on this list. For that, your array must be an Integer array (instead of an int array):

Integer[] arr={1,2,3};
List<Integer> arrAsList = Arrays.asList(arr);
Iterator<Integer> iter = arrAsList.iterator();

Note: it is only theory. You can get an iterator like this, but I discourage you to do so. Performances are not good compared to a direct iteration on the array with the "extended for syntax".

Note 2: a list construct with this method doesn't support all methods (since the list is backed by the array which have a fixed size). For example, "remove" method of your iterator will result in an exception.

share|improve this answer
    
I don't think it will work.Arrays.asList(arr) will return List of type int[].Since it is primitive array. –  Emil Oct 12 '10 at 8:36
    
@Emil: Java generics don’t work for primitive types. Arrays.asList implicitly takes care of this by boxing the values in the array. Hence, the result really is a List<Integer>. –  Konrad Rudolph Oct 12 '10 at 8:37
    
@emil it works because Arrays.asList takes a varargs parameter –  Sean Patrick Floyd Oct 12 '10 at 8:38
    
@seanizer:but i tried the above code in my IDE and it shows error. –  Emil Oct 12 '10 at 8:42
    
it compiles in my eclipse. have you set the compiler compliance to at least 1.5 ? –  Sean Patrick Floyd Oct 12 '10 at 8:44

For (2), Guava provides exactly what you want as Int.asList(). There is an equivalent for each primitive type in the associated class, e.g., Booleans for boolean, etc.

    int[] arr={1,2,3};
    for(Integer i : Ints.asList(arr)) {
      System.out.println(i);
    }
share|improve this answer

I'm a recent student but I BELIEVE the original example with int[] is iterating over the primitives array, but not by using an Iterator object. It merely has the same (similar) syntax with different contents,

for (primitive_type : array) { }

for (object_type : iterableObject) { }

Arrays.asList() APPARENTLY just applies List methods to an object array that it's given - but for any other kind of object, including a primitive array, iterator().next() APPARENTLY just hands you the reference to the original object, treating it as a list with one element. Can we see source code for this? Wouldn't you prefer an exception? Never mind. I guess (that's GUESS) that it's like (or it IS) a singleton Collection. So here asList() is irrelevant to the case with a primitives array, but confusing. I don't KNOW I'm right, but I wrote a program that says that I am.

Thus this example (where basically asList() doesn't do what you thought it would, and therefore is not something that you'd actually use this way) - I hope the code works better than my marking-as-code, and, hey, look at that last line:

// Java(TM) SE Runtime Environment (build 1.6.0_19-b04)

import java.util.*;

public class Page0434Ex00Ver07 {
public static void main(String[] args) {
    int[] ii = new int[4];
    ii[0] = 2;
    ii[1] = 3;
    ii[2] = 5;
    ii[3] = 7;

    Arrays.asList(ii);

    Iterator ai = Arrays.asList(ii).iterator();

    int[] i2 = (int[]) ai.next();

    for (int i : i2) {
        System.out.println(i);
    }

    System.out.println(Arrays.asList(12345678).iterator().next());
}
}
share|improve this answer

I like the answer from 30thh using Iterators from Guava. However, from some frameworks I get null instead of an empty array, and Iterators.forArray(array) does not handle that well. So I came up with this helper method, which you can call with Iterator<String> it = emptyIfNull(array);

public static <F> UnmodifiableIterator<F> emptyIfNull(F[] array) {
    if (array != null) {
        return Iterators.forArray(array);
    }
    return new UnmodifiableIterator<F>() {
        public boolean hasNext() {
            return false;
        }

        public F next() {
            return null;
        }
    };
}
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.