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I should find unique numbers in Vector:

Vector c = new Vector();

Something like:

int[] u = c.unique();

How can I do this?

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possible duplicate of stackoverflow.com/questions/562894/… – Vaandu Jan 2 '12 at 8:29
    
@Vanithi - no, that question is about finding non-unique numbers. – Stephen C Jan 2 '12 at 8:40
    
But the same can be used to get unique also, using Set – Vaandu Jan 2 '12 at 8:54
up vote 11 down vote accepted

The easiest thing to program would be to use a Set<Integer>. For instance, this will print the unique elements:

Vector<Integer> c = new Vector<Integer>();
// add elements to c

Set<Integer> unique = new HashSet<Integer>();
unique.addAll(c);
for (Integer i : unique) {
    System.out.println(i);
}
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1  
Note that this will not preserve order. – delnan Jan 2 '12 at 8:34
3  
If you want to preserve order, use LinkedHashSet instead of HashSet. – Jesper Jan 2 '12 at 8:40
    
And if you want them sorted use SortedSet – Vinayak Garg Jan 2 '12 at 8:45
    
@VinayakGarg - SortedSet is an interface, not a class ... – Stephen C Jan 2 '12 at 9:49
    
+1: You might consider using a Set right from the start and drop the Vector. IMHO I would only use Vector if a library requires it. Otherwise using a plain List or in this case a Set is a better choice. – Peter Lawrey Jan 2 '12 at 11:17

Simply create a Set using this vector, and the set will then consist of only unique numbers.

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There is no specific method to do this, but here is a one-liner that is almost functionally equivalent:

Integer[] u = new HashSet<Integer>(c).toArray(new Integer[0]);

(Use LinkedHashSet or TreeSet to preserve the order and sort the elements as well.)

Creating an int[] is more work, and will entail an explicit loop to copy values to the int[].


FWIW, under most circumstances it is better to use ArrayList instead of Vector. The exceptions are when you need the kind of thread-safety that Vector provides, or if you are developing for a J2ME-based platform that is missing most of the Collection classes.

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Of course, in J2ME, not only is ArrayList not going to work, none of the Set-based solutions to OP's problem will work, either. – Ted Hopp Jan 2 '12 at 16:23

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