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Java: Detect duplicates in ArrayList?

To check if a List has duplicate entries i convert it to HashSet and compare the size for any mismatch. Do you guys have any better approach?

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marked as duplicate by NimChimpsky, Rohit Jain, Pshemo, StanislavL, Ram kiran Dec 19 '12 at 9:42

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2  
use list.indexOf and list.lastIndexOf. It it contains duplicate objects, lastIndexOf will be greater than indexOf –  Usman Saleem Dec 19 '12 at 9:40
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@UsmanSaleem I guess this will be less efficient. –  Minko Gechev Dec 19 '12 at 9:41
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why do you store them in the list then? –  gregory561 Dec 19 '12 at 9:41
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@NimChimpsky This other answer is more efficient. –  assylias Dec 19 '12 at 9:47
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@qualtar How do you think this is done? Of course it is O(n): the constructor will loop over the items in the list and add them one by one too the set. You can check the code if you don't believe me. –  assylias Dec 19 '12 at 10:01

1 Answer 1

This code may break somewhat earlier if you have duplicates at the beginning of the collection:

HashSet<Integer> hashSet = new HashSet<>();
for(Integer i : myList) {
  if(!hashSet.add(i)) return true;
}

As Pshemo pointed out, the add method returns a bool whether an element has actually been added to the collection, as opposed to has already existed in it.

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Although the concept is transposable, your code is not Java. Here is a Java version. –  assylias Dec 19 '12 at 9:46
    
The answer above is not bad, but just has one problems: the keywords var and foreach are not valid in Java. –  NickJ Dec 19 '12 at 9:46
    
@Muddu This is less efficient than converting list to HashSet. Your approach is of order(n) while converting to HashSet and comparing requires only O(1). –  Qualtar Demix Dec 19 '12 at 9:50
2  
@qualtar Really? Didn't know that, thought it was O(n), since HashSet(Collection c)-constructor appears to invoke addAll on AbstractCollection docjar.com/html/api/java/util/AbstractCollection.java.html. Or is it a different approach I need to choose? –  Matthias Meid Dec 19 '12 at 10:09
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While adding Java must check if set already have that element so your algorithm is checking it twice. More optimized version could be for (Integer i : list) {if (!set.add(i)) return true;} return false; –  Pshemo Dec 19 '12 at 10:12

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