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Is there any method for counting the occurrence of each item on an array?

Lets say I have:

String[] array = {"name1","name2","name3","name4", "name5"};

Here the output will be:

name1 1
name2 1
name3 1
name4 1
name5 1

and if I have:

String[] array = {"name1","name1","name2","name2", "name2"};

The output would be:

name1 2
name2 3

The output here is just to demonstrate the expected result.

share|improve this question
    
Probably not, but it should be simple enough for you to implement a method on your own considering how easy the task is. It will perform in O(n) no matter what I reckon anyway (unless you make some assumptions about sorting to increase this speed) – gnomed Nov 11 '11 at 18:59

12 Answers 12

up vote 13 down vote accepted

You could use a MultiSet from Google Collections/Guava or a Bag from Apache Commons.

If you have a collection instead of an array, you can use addAll() to add the entire contents to the above data structure, and then apply the count() method to each value. A SortedMultiSet or SortedBag would give you the items in a defined order.

Google Collections actually has very convenient ways of going from arrays to a SortedMultiset.

share|improve this answer
    
The link to Bag is 404. – james.garriss Nov 21 '13 at 20:53
    
I used getCardinalityMap() from org.apache.commons.collections.CollectionUtils. – Tuan Sep 17 '14 at 17:54
List asList = Arrays.asList(array);
Set<String> mySet = new HashSet<String>(asList);
for(String s: mySet){

 System.out.println(s + " " +Collections.frequency(asList,s));

}
share|improve this answer
    
from my experience, Collections.frequency is too slow.Avoid if performance is a concern. – akshayb Jun 2 '14 at 7:10
    
Not really, if it is a HashSet or HashMap. – Damian Jun 3 at 23:17

I would use a hashtable with in key takes the element of the array (here string) and in value an Integer.

then go through the list doing something like this :

for(String s:array){
if(hash.containsKey(s)){
  Integer i = hash.get(s);
  i++;
}else{
  hash.put(s, new Interger(1));
}
share|improve this answer
    
This doesn't work, you'd have to use hash.put(s, hash.get(s) + 1);. Doing i++; doesn't update the integer inside the hashtable. There's also other typos. – Jorn Vernee Apr 30 at 17:58

With , you can do it like this:

String[] array = {"name1","name2","name3","name4", "name5", "name2"};
Arrays.stream(array)
      .collect(Collectors.groupingBy(s -> s))
      .forEach((k, v) -> System.out.println(k+" "+v.size()));

Output:

name5 1
name4 1
name3 1
name2 2
name1 1

What it does is:

  • Create a Stream<String> from the original array
  • Group each element by identity, resulting in a Map<String, List<String>>
  • For each key value pair, print the key and the size of the list

If you want to get a Map that contains the number of occurences for each word, it can be done doing:

Map<String, Long> map = Arrays.stream(array)
    .collect(Collectors.groupingBy(s -> s, Collectors.counting()));

For more informations:

Hope it helps! :)

share|improve this answer

I wrote a solution for this to practice myself. It doesn't seem nearly as awesome as the other answers posted, but I'm going to post it anyway, and then learn how to do this using the other methods as well. Enjoy:

public static Integer[] countItems(String[] arr)
{
    List<Integer> itemCount = new ArrayList<Integer>();
    Integer counter = 0;
    String lastItem = arr[0];

    for(int i = 0; i < arr.length; i++)
    {
        if(arr[i].equals(lastItem))
        {
            counter++;
        }
        else
        {
            itemCount.add(counter);
            counter = 1;
        }
        lastItem = arr[i];
    }
    itemCount.add(counter);

    return itemCount.toArray(new Integer[itemCount.size()]);
}

public static void main(String[] args)
{
    String[] array = {"name1","name1","name2","name2", "name2", "name3",
            "name1","name1","name2","name2", "name2", "name3"};
    Arrays.sort(array);
    Integer[] cArr = countItems(array);
    int num = 0;
    for(int i = 0; i < cArr.length; i++)
    {
        num += cArr[i]-1;
        System.out.println(array[num] + ": " + cArr[i].toString());
    }
}
share|improve this answer

You can use Hash Map as given in the example below:

import java.util.HashMap;
import java.util.Set;

/**
 * 
 * @author Abdul Rab Khan
 * 
 */
public class CounterExample {
    public static void main(String[] args) {
        String[] array = { "name1", "name1", "name2", "name2", "name2" };
        countStringOccurences(array);
    }

    /**
     * This method process the string array to find the number of occurrences of
     * each string element
     * 
     * @param strArray
     *            array containing string elements
     */
    private static void countStringOccurences(String[] strArray) {
        HashMap<String, Integer> countMap = new HashMap<String, Integer>();
        for (String string : strArray) {
            if (!countMap.containsKey(string)) {
                countMap.put(string, 1);
            } else {
                Integer count = countMap.get(string);
                count = count + 1;
                countMap.put(string, count);
            }
        }
        printCount(countMap);
    }

    /**
     * This method will print the occurrence of each element
     * 
     * @param countMap
     *            map containg string as a key, and its count as the value
     */
    private static void printCount(HashMap<String, Integer> countMap) {
        Set<String> keySet = countMap.keySet();
        for (String string : keySet) {
            System.out.println(string + " : " + countMap.get(string));
        }
    }
}
share|improve this answer

Here is my solution - The method takes an array of integers(assuming the range between 0 to 100) as input and returns the number of occurrences of each element.

let's say the input is [21,34,43,21,21,21,45,65,65,76,76,76]. So the output would be in a map and it is: {34=1, 21=4, 65=2, 76=3, 43=1, 45=1}

public Map<Integer, Integer> countOccurrence(int[] numbersToProcess) {
    int[] possibleNumbers = new int[100];
    Map<Integer, Integer> result = new HashMap<Integer, Integer>();

    for (int i = 0; i < numbersToProcess.length; ++i) {
      possibleNumbers[numbersToProcess[i]] = possibleNumbers[numbersToProcess[i]] + 1;
      result.put(numbersToProcess[i], possibleNumbers[numbersToProcess[i]]);
    }

    return result;
}

share|improve this answer

There are several methods which can help, but this is one is using for loop.

import java.util.Arrays;

public class one_dimensional_for {

private static void count(int[] arr) {

    Arrays.sort(arr);

    int sum = 0, counter = 0;

    for (int i = 0; i < arr.length; i++) {
        if (arr[0] == arr[arr.length - 1]) {
            System.out.println(arr[0] + ": " + counter + " times");
            break;
        } else {
            if (i == (arr.length - 1)) {
                sum += arr[arr.length - 1];
                counter++;
                System.out.println((sum / counter) + " : " + counter
                        + " times");
                break;
            } else {
                if (arr[i] == arr[i + 1]) {
                    sum += arr[i];
                    counter++;
                } else if (arr[i] != arr[i + 1]) {
                    sum += arr[i];
                    counter++;
                    System.out.println((sum / counter) + " : " + counter
                            + " times");
                    sum = 0;
                    counter = 0;
                }
            }
        }
    }
}

public static void main(String[] args) {
    int nums[] = { 1, 1, 1, 1, 2, 2, 2, 3, 3, 4, 5, 5, 5, 5, 6 };
    count(nums);
}

}
share|improve this answer

You can do it by using Arrays.sort and Recursion. The same wine but in a different bottle....

import java.util.Arrays;

public class ArrayTest {
public static int mainCount=0;

public static void main(String[] args) {
    String prevItem = "";
    String[] array = {"name1","name1","name2","name2", "name2"};
    Arrays.sort(array);

    for(String item:array){
        if(! prevItem.equals(item)){
            mainCount = 0;
            countArray(array, 0, item);
            prevItem = item;
        }
    }
}

private static void countArray(String[] arr, int currentPos, String item) {
    if(currentPos == arr.length){
        System.out.println(item + " " +  mainCount);
        return;
    }
    else{
        if(arr[currentPos].toString().equals(item)){
            mainCount += 1;
        }
        countArray(arr, currentPos+1, item);
    }
  }
}
share|improve this answer

This is a simple script I used in Python but it can be easily adapted. Nothing fancy though.

def occurance(arr):
  results = []
  for n in arr:
      data = {}
      data["point"] = n
      data["count"] = 0
      for i in range(0, len(arr)):
          if n == arr[i]:
              data["count"] += 1
      results.append(data)
  return results
share|improve this answer

You can use HashMap, where Key is your string and value - count.

share|improve this answer
import java.util.ArrayList;
import java.util.Arrays;
import java.util.HashMap;
import java.util.List;

public class MultiString {

    public HashMap<String, Integer> countIntem( String[] array ) {

        Arrays.sort(array);
        HashMap<String, Integer> map = new HashMap<String, Integer>();
        Integer count = 0;
        String first = array[0];
        for( int counter = 0; counter < array.length; counter++ ) {
            if(first.hashCode() == array[counter].hashCode()) {
                count = count + 1;
            } else {
                map.put(first, count);
                count = 1;
            }
            first = array[counter];
            map.put(first, count);
        }

        return map;
    }

    /**
     * @param args
     */
    public static void main(String[] args) {
        // TODO Auto-generated method stub
        String[] array = { "name1", "name1", "name2", "name2", "name2",
                "name3", "name1", "name1", "name2", "name2", "name2", "name3" };

        HashMap<String, Integer> countMap = new MultiString().countIntem(array);
        System.out.println(countMap);
    }
}



Gives you O(n) complexity.
share|improve this answer
    
You may want to provide some explanation to your code. – jrenk Sep 21 '15 at 9:39

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