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List<Integer> contacts = new Vector<Integer>();

Collections.sort(contacts);

Okay I know a vector is thread safe, but are there any issues if I do the above?

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what kind of issues? thread-safety means many things. –  jtahlborn Nov 15 '12 at 18:51
1  
I think you mean: List<Integer> contacts = new Vector<Integer>(); Collections.sort(contacts); As to thread-safety unless you are storing contacts outside a local variable there is no concern as only one thread can access it. –  Allen Parslow Nov 15 '12 at 18:53
    
Why do you think there would be any thread-safety issue with that code? –  Bhesh Gurung Nov 15 '12 at 18:54
    
In order for code to be a thread-safety risk, you need more than one thread. If you have a second thread, and it accesses contacts during the sort, then, yes. –  dashrb Nov 15 '12 at 18:56
    
Yeah Apologies never quite read what I typed. And yes of course in different threads. –  Andrew Nov 15 '12 at 19:09
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2 Answers

vector is thread safe

Each of its methods are thread safe. But Collections.sort will iterate over the vector which is not an atomic operation. In particular, Vector's javadoc states:

if the vector is structurally modified at any time after the iterator is created, in any way except through the iterator's own remove or add methods, the iterator will throw a ConcurrentModificationException.

So if your vector is modified by another thread while you are sorting it, you will get an exception.

Alternatives if several threads can access your structure include: making a defensive copy or using a concurrent structure such as a CopyOnWriteArrayList.

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Is there a way I could make Collections thread safe or a way to sort it that is? –  Andrew Nov 15 '12 at 19:05
    
The easy way is to make a copy and sort the copy. –  assylias Nov 15 '12 at 19:10
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You can make this code thread safe using this:

List<Integer> contacts = new Vector<Integer>();

synchronized(contacts) {
  Collections.sort(contacts);
}
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+1 yes of course! –  assylias Nov 15 '12 at 21:59
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