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I would like to convert an array to a Set in Java. There are some obvious ways of doing this (i.e. with a loop) but I would like something a bit neater, something like:

java.util.Arrays.asList(Object[] a);

Any ideas?

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11 Answers 11

up vote 524 down vote accepted

Like this:

Set<T> mySet = new HashSet<T>(Arrays.asList(someArray));
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I would leave out the last <T>, otherwise nice oneliner! – despot Jul 6 '11 at 10:06
this is highly innefient. Why create a List to iterate over it to create a Set? Just iterate over the array yourself. – dataoz Mar 2 '12 at 17:56
@dataoz: Wrong; Arrays.asList is O(1). – SLaks Jun 8 '12 at 18:34
@SLaks Exactly. asList just creates a view on top of the array. – Jagat Jun 25 '12 at 13:12
Note that if you use this method on an array of primitives such as int[] it will return a List<int[]> so you should use wrapper classes to get the intended behavior. – T. Markle Sep 22 '12 at 4:53
Set<T> mySet = new HashSet<T>();
Collections.addAll(mySet, myArray);

That's Collections.addAll(java.util.Collection, T...) from JDK 6.

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You can do that with java.util.Collections.addAll. Plus, I wouldn't recommend Commons Collections anymore, what with it not being generified and Guava existing . – ColinD Jun 17 '10 at 18:40
+1 for being more efficient than SLaks's answer, even though it's not a one-liner. – Adrian Apr 10 '12 at 22:17
@Adrian I question that. I think addAll will be O(n). – Steve Powell Oct 22 '13 at 15:35
I believe Adrian's point was about how SLaks' solution creates a List instance which is ultimately thrown out. The actual impact of that difference is probably extremely minimal, but could depend on the context in which you're doing this -- tight loops or very large sets might behave very differently between these two options. – JavadocMD Oct 22 '13 at 19:00
Per the Collections.addAll() javadoc (Java 6): "The behavior of this convenience method is identical to that of c.addAll(Arrays.asList(elements)), but this method is likely to run significantly faster under most implementations." – Bert F Feb 3 '14 at 22:50

With Guava you can do:

T[] array = ...
Set<T> set = Sets.newHashSet(array);
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also ImmutableSet.copyOf(array). (I like to point out also's, I guess.) – Kevin Bourrillion Jun 17 '10 at 21:26
I love Guava. It's API is concise and epressive. – oschrenk Dec 11 '11 at 20:41
+1 / makes for more readable and succinct code than java's collections. – Jubbat Jan 7 '12 at 21:22
+1. I agree with Jubbat. The accepted answer is correct if limited to standard library, but this is far more elegant. Worth including Guava in your project. – Chet Mar 27 '13 at 14:59

Java 8:

String[] stArr = {"eins", "zwei", "drei", "bier"};

Set<String> strSet =;  
//[eins, vier, zwei, drei]
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After you do Arrays.asList(array) you can execute Set set = new HashSet(list);

Here is a sample method, you can write:

public <T> Set<T> GetSetFromArray(T[] array) {
    return new HashSet<T>(Arrays.asList(array));
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I was hoping for a method that returns a set directly from an array, does one exist? – Peter Jun 17 '10 at 18:31
Honestly, I doubt:) – Petar Minchev Jun 17 '10 at 18:31
You can write your own, if you are so eager:) – Petar Minchev Jun 17 '10 at 18:34
I know you meant Arrays.asList(array) instead of Arrays.List(array) in the first line – dimitrisli Oct 25 '11 at 21:24

In GS Collections, the following will work:

Set<Integer> set1 = Sets.mutable.of(1, 2, 3, 4, 5);
Set<Integer> set2 = Sets.mutable.of(new Integer[]{1, 2, 3, 4, 5});
MutableSet<Integer> mutableSet = Sets.mutable.of(1, 2, 3, 4, 5);
ImmutableSet<Integer> immutableSet = Sets.immutable.of(1, 2, 3, 4, 5);

Set<Integer> unmodifiableSet = Sets.mutable.of(1, 2, 3, 4, 5).asUnmodifiable();
Set<Integer> synchronizedSet = Sets.mutable.of(1, 2, 3, 4, 5).asSynchronized();

Note: I am a developer on GS Collections

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Quickly : you can do :

// Fixed-size list
List list = Arrays.asList(array);

// Growable list
list = new LinkedList(Arrays.asList(array));

// Duplicate elements are discarded
Set set = new HashSet(Arrays.asList(array));

and to reverse

// Create an array containing the elements in a list
Object[] objectArray = list.toArray();
MyClass[] array = (MyClass[])list.toArray(new MyClass[list.size()]);

// Create an array containing the elements in a set
objectArray = set.toArray();
array = (MyClass[])set.toArray(new MyClass[set.size()]);
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the most comprehensive answer! – davidgale Oct 2 '13 at 18:37

In Java 8 we have the option of using Stream as well. We can get stream in various ways:

        Set<String> set = Stream.of("A", "B", "C", "D").collect(Collectors.toCollection(HashSet::new));

        String[] stringArray = {"A", "B", "C", "D"};
        Set<String> strSet1 =;

        Set<String> strSet2 =;

The source code of Collectors.toSet() shows that elements are added one by one to a HashSet but specification does not guarantees it. There are no guarantees on the type, mutability, serializability, or thread-safety of the Set returned. So it is better to use the later option. The output is: [A, B, C, D] [A, B, C, D] [A, B, C, D]

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Varargs will work too!

Stream.of(T... values).collect(Collectors.toSet());
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Sometime using some standard libraries helps a lot. Try to look at the Apache Commons Collections. In this case your problems is simply transformed to something like this

String[] keys = {"blah", "blahblah"}
Set<String> myEmptySet = new HashSet<String>();
CollectionUtils.addAll(pythonKeywordSet, keys);

And here is the CollectionsUtils javadoc

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user might not use apache commons – Adrian Jan 4 '12 at 17:17
if the user does not use apache commons, then that is his first mistake. – Jeryl Cook Oct 4 '13 at 13:46
why would you use this instead of java.util.Collections.addAll(myEmptySet, keys);?? – djeikyb Dec 9 '14 at 21:10

new HashSet<Object>(Arrays.asList(Object[] a));

But I think this would be more efficient:

final Set s = new HashSet<Object>();    
for (Object o : a) { s.add(o); }         
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That wouldn't really be more efficient (at least not worth thinking about). – ColinD Jun 17 '10 at 18:46
With the constructor version, the initial capacity of the HashSet is set based on the size of the array, for instance. – ColinD Jun 17 '10 at 18:55
this answer is not so dumb as it seems: 'Collections.addAll(mySet, myArray);' from java.util.Collections use the same iterator but plus one boolean operation . Plus as Bert F pointed out Collections.addAll " likely to run significantly faster under most implementations" than c.addAll(Arrays.asList(elements)) – Zorb Oct 14 at 22:05

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