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I need to have a Set (HashSet) such that if I insert a pair (a, b) and if (b, a) is already in the set, the insertion would just be ignored. How to do this in Java?

Many thanks!

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4 Answers 4

up vote 7 down vote accepted

Well, it depends on the hashCode() and equals() method of your Pair class. They need to ignore order.

Set itself is a good example of a class which ignores order for equality--you can look at the code of AbstractSet. If the order of the pair doesn't matter even outside of equality comparison, you can just store HashSets (each with two elements) in your set. It would be best to wrap it in a datatype:

 public class UnorderedPair<T> {
     private final Set<T> set;

     public UnorderedPair(T a, T b) {
          set = new HashSet<T>();
          set.add(a);
          set.add(b);
     }

     public boolean equals(Object b) {
         //...delegate to set
     }

     public int hashCode() {
         return set.hashCode();
     }
}
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Define a class Pair whose equals and hashCode methods are based on both a and b in the way that the order of a and b does not matter and use a HashSet.

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final class Pair<T> {
  private final Set<T> elements = new LinkedHashSet<T>();
  Pair(T a, T b) {
    elements.add(a);
    if (!elements.add(b))
      throw new IllegalArgumentException();
  }
  @Override
  public int hashCode() {
    return elements.hashCode();
  }
  @Override
  public boolean equals(Object obj) {
    if (obj == this)
      return true;
    if (!(obj instanceof Pair<?>))
      return false;
    return elements.equals(((Pair<?>) obj).elements);
  }
}
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Using a Set means that a and b cannot be equal. –  Jonathan Jan 18 '12 at 12:47
    
As I've written the constructor, this isn't allowed. But if you take out the explicit check, a and b could be the same object, and everything would still work. –  erickson Aug 15 '12 at 22:53
    
Oh, indeed. Good catch. Thanks for clarifying! –  Jonathan Aug 16 '12 at 10:44

Override the equals() and hashCode() methods of the Pair class to treat both (a,b) and (b,a) as equal.

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1  
Overriding hashCode() is also necessary. –  nicholas.hauschild Jan 18 '12 at 5:23
    
@nicholas.hauschild yes thats a given –  Pangea Jan 18 '12 at 5:26
1  
Not for someone who doesn't see how to implement a tuple that can be used as a hash key. –  erickson Jan 18 '12 at 5:33

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