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.

I have the following kind of situation:

Set<Element> set = getSetFromSomewhere();
if (set.size() == 1) {
    // return the only element
} else {
    throw new Exception("Something is not right..");
}

Assuming I cannot change the return type of getSetFromSomewhere(), is there a better or more correct way to return the only element in the set than

  • Iterating over the set and returning immediately
  • Creating a list from the set and calling .get(0)
share|improve this question
    
You can invoke toArray() method and then access the 0th index. But, i think this is quite similar with "creating a list" –  Hendra Jaya Mar 8 '11 at 6:55

4 Answers 4

up vote 13 down vote accepted

You can use an Iterator to both obtain the only element as well as verify that the collection only contains one element (thereby avoiding the size() call and the unnecessary list creation):

Iterator<Element> iterator = set.iterator();

if (!iterator.hasNext()) {
    throw new RuntimeException("Collection is empty");
}

Element element = iterator.next();

if (iterator.hasNext()) {
    throw new RuntimeException("Collection contains more than one item");
}

return element;

You would typically wrap this up in its own method:

public static <E> E getOnlyElement(Iterable<E> iterable) {
    Iterator<E> iterator = iterable.iterator();

    // The code I mentioned above...
}

Note that this implementation is already part of Google's Guava libraries (which I highly recommend, even if you don't use it for this particular code). More specifically, the method belongs to the Iterables class:

Element element = Iterables.getOnlyElement(set);

If you're curious about how it is implemented, you can look at the Iterators class source code (the methods in Iterables often call methods in Iterators):

  /**
   * Returns the single element contained in {@code iterator}.
   *
   * @throws NoSuchElementException if the iterator is empty
   * @throws IllegalArgumentException if the iterator contains multiple
   *     elements.  The state of the iterator is unspecified.
   */
  public static <T> T getOnlyElement(Iterator<T> iterator) {
    T first = iterator.next();
    if (!iterator.hasNext()) {
      return first;
    }

    StringBuilder sb = new StringBuilder();
    sb.append("expected one element but was: <" + first);
    for (int i = 0; i < 4 && iterator.hasNext(); i++) {
      sb.append(", " + iterator.next());
    }
    if (iterator.hasNext()) {
      sb.append(", ...");
    }
    sb.append('>');

    throw new IllegalArgumentException(sb.toString());
  }
share|improve this answer
1  
You'll specifically want Iterables.getOnlyElement() in your case. It is one of the most popular methods in Guava. I strongly recommend it. :-) –  Kevin Bourrillion Mar 9 '11 at 15:11
    
@Kevin: I guess my answer wasn't clear enough. I did recommend Iterables.getOnlyElement, but I illustrated its behavior via Iterators.getOnlyElement (because Iterables calls Iterators). –  Adam Paynter Mar 9 '11 at 15:34
    
Thanks! All great answers but I'll mark this as accepted for being the most comprehensive and bringing up Guava. –  Janne Mar 9 '11 at 16:45
    
@Kevin: I know you and Josh are probably busy, but would you mind asking Josh if he would take a quick look at this question concerning the Map API? stackoverflow.com/questions/5028962/… I don't want to interrupt anyone –  Adam Paynter Mar 17 '11 at 11:38
    
I've answered it. –  Kevin Bourrillion Mar 18 '11 at 15:27

The best general solution (where you don't know the actual set class) is:

Element first = set.iterator().next();

If the set class is known to be a TreeSet, then a better solution is:

Element first = ((TreeSet) set).first();

These 2 solutions are O(1) in time and space for a HashSet or LinkedHashSet (were applicable) and O(logN) in time / O(1) in space for a TreeSet.

The approach of creating a list from the set contents and then calling List.get(0) gives a poor solution since the first step is an O(N) operation, both in time and space.


I failed to notice that N is actually 1. But even so, creating an iterator is likely to be less expensive than creating a temporary list.

share|improve this answer
    
However, since he verifies that n is equal to 1 before doing the operation, O(N) is equivalent to O(1) in this case ;-) However, creating the list is probably still slower. –  Joachim Sauer Mar 8 '11 at 7:26

You could grab the iterator:

Element firstEl = set.iterator().next();
share|improve this answer
if(set.size()==1){
   set.toArray(new Element[0])[0];
}
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.