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My problem is as follows. I have an arraylist of integers. The arraylist contains 5 ints e.g[5,5,3,3,9] or perhaps [2,2,2,2,7]. Many of the arraylists have duplicate values and i'm unsure how to count how many of each of the values exist.

The problem is how to find the duplicate values in the arraylist and count how many of that particular duplicate there are. In the first example [5,5,3,3,9] there are 2 5's and 2 3's. The second example of [2,2,2,2,7] would be only 4 2's. The resulting information i wish to find is if there are any duplicates how many of them there are and what specific integer has been duplicated.

I'm not too sure how to do this in java.

Any help would be much appreciated. Thanks.

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6 Answers 6

up vote 6 down vote accepted

To me, the most straightforward answer, would be using the Collections.frequency method. Something along the lines of this:

// Example ArrayList with Integer values
ArrayList<Integer> intList = new ArrayList<Integer>();
intList.add(2);
intList.add(2);
intList.add(2);
intList.add(2);
intList.add(7);

Set<Integer> noDupes = new HashSet<Integer>();
noDupes.addAll(intList); // Remove duplicates

for (Integer i : noDupes) {
    int occurrences = Collections.frequency(intList, i);
    System.out.println(i + " occurs " + occurrences + " times.");
}

If you want to, you could map each Integer with its number of occurrences:

Map<Integer, Integer> map = new HashMap<Integer, Integer>();
for (Integer i : noDupes) {
    map.put(i, Collections.frequency(intList, i));
}
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your first answer is also ideal, just tried it out works really well! Thanks! –  Julio Apr 30 '10 at 1:03
1  
This looks to be O(N^2), when O(N log N) is the upper bound with comparison-based sort. O(N) possible if non comparison-based sort is applicable. –  polygenelubricants Apr 30 '10 at 1:52

Two algorithms spring to mind.

Sort it (Collections.sort). Then iterate through easily finding dupes.

Iterate through keeping count in a Map<Integer,Integer> (or Map<Integer,AtomicInteger> for a mutable count). A bit ugly this way.

Either way, coding it should be an instructive exercise. I suggest doing both, and comparing.

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2  
Variation on #2: iterate once to populate the map with (in the example) [5, 0], [3, 0], [9, 0]; then a second time through to obtain the counts. I find this logic simpler than checking, at each point, whether the value is already a key of the map. –  Carl Manaster Apr 29 '10 at 22:43
    
@Carl I like that. –  Tom Hawtin - tackline Apr 29 '10 at 22:44
    
That comment sounds pretty much it. ive just never used maps before so not sure how to go about it –  Julio Apr 29 '10 at 22:49
    
This is one of those times where I go "why couldn't it just be like Python"... a defaultdict would work so perfectly here. :) –  Amber Apr 29 '10 at 22:49
    
@Dan map.put(key, value); to insert a value. Integer value = map.get(key); to retrieve a value (will be null if key is not mapped. Create with Map<Integer,Integer> map = new HashMap<Integer,Integer>();. And that's about all you need. @Dav Perhaps there is something in Google's Collections (or perhaps it is not considered worthwhile (in Java)). ConcurrentMap.putIfAbsent would make things cleaner, if more obscure. –  Tom Hawtin - tackline Apr 29 '10 at 23:59

Here is a concrete implementation, with test, of what I described in comments to @Tom's answer:

package playground.tests;

import java.util.HashMap;
import java.util.HashSet;
import java.util.Map;
import java.util.concurrent.atomic.AtomicInteger;

import junit.framework.TestCase;

public class DupeCounterTest extends TestCase {

    public void testCountDupes() throws Exception {
        int[] array = new int[] { 5, 5, 3, 3, 9 };
        assertEquals("{3=2, 5=2}", countDupes(array).toString());
    }

    private Map<Integer, AtomicInteger> countDupes(int[] array) {
        Map<Integer, AtomicInteger> map = new HashMap<Integer, AtomicInteger>();
        // first create an entry in the map for every value in the array
        for (int i : array)
            map.put(i, new AtomicInteger());
        // now count all occurrences
        for (int i : array)
            map.get(i).addAndGet(1);
        // now get rid of those where no duplicate exists
        HashSet<Integer> discards = new HashSet<Integer>();
        for (Integer i : map.keySet())
            if (map.get(i).get() == 1)
                discards.add(i);
        for (Integer i : discards) 
            map.remove(i);
        return map;
    }

}
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brilliant! :-) bit of tweaking helps a lot! –  Julio Apr 29 '10 at 23:35

Use a Hashmap collection in addition to the array list where

  • the Hashmap key is the unique array int value and
  • the Hashmap value to the key is the count of each value encountered.

Walk your array list collecting these values into the hashmap adding a new item when a previous key does not exist and incrementing by 1 the values of keys that do already exist. Then iterate over the Hashmap and print out any keys where the value is > 1.

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You can go through the List and put them in a Map with the count. Then it is easy figure out which one is duplicated.

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I've never used Maps before in java, any idea how i'd go about this? cheers. –  Julio Apr 29 '10 at 22:46

For a cleaner abstraction of what you're doing, you could use the Multiset data structure from guava/google-collections. You may even find you'd rather use it than a List, depending on what you're doing with it (if you don't need the deterministic ordering of a list). You'd use it like this:

Multiset<Integer> multiset = HashMultiset.create(list);
int count = multiset.count(3); // gets the number of 3s that were in the list

In terms of what the above is doing under the covers, it's almost exactly equivalent to the suggestion of building a Map<Integer,AtomicInteger> based on your list.

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