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int[] a = new int[10]{1,2,3,4,5,6,7,7,7,7};

how can I write a method and return 7?

Edit 1
I want to keep it native without the help of lists,maps or other helpers.
Only arrays[].

Thanks

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3  
Is this homework? If yes, please add the homework tag. And don't expect us to write the code for you. What have you tried so far? –  Tudor Dec 17 '11 at 15:08
    

9 Answers 9

up vote 2 down vote accepted
public int getPopularElement(int[] a)
{
  int count = 1, tempCount;
  int popular = a[0];
  int temp = 0;
  for (int i = 0; i < (a.length - 1); i++)
  {
    temp = a[i];
    tempCount = 0;
    for (int j = 1; j < a.length; j++)
    {
      if (temp == a[j])
        tempCount++;
    }
    if (tempCount > count)
    {
      popular = temp;
      count = tempCount;
    }
  }
  return popular;
}

Hope this works for you.

Regards

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1  
isnt this o(n^2)? –  gabhi Jun 25 at 23:58
    
@gabhi: Yupp true, but why this astonishment!!!! :-) –  nIcE cOw Jun 26 at 18:14
    
thanks for the solution. I was surprised only because your answer was accepted as the correct answer and generally in computer science o(n2) isnt the best answer. but your solution is definitely easier to understand simple and intuitive. man you have got a great score on Stackoverflow. kudos!!! –  gabhi Jun 26 at 18:44
    
@gabhi: I just made that straight away after looking at the OP's question. Never thought much on the complexity front, though if you can make one, I be happy to upvote that straight away :-) –  nIcE cOw Jun 26 at 18:57

Try this answer. First, the data:

int[] a = {1,2,3,4,5,6,7,7,7,7};

Here, we build a map counting the number of times each number appears:

Map<Integer, Integer> map = new HashMap<Integer, Integer>();
for (int i : a) {
    Integer count = map.get(i);
    map.put(i, count != null ? count+1 : 0);
}

Now, we find the number with the maximum frequency and return it:

Integer popular = Collections.max(map.entrySet(),
    new Comparator<Map.Entry<Integer, Integer>>() {
    @Override
    public int compare(Entry<Integer, Integer> o1, Entry<Integer, Integer> o2) {
        return o1.getValue().compareTo(o2.getValue());
    }
}).getKey();

As you can see, the most popular number is seven:

System.out.println(popular);
> 7

EDIT

Here's my answer without using maps, lists, etc. and using only arrays; although I'm sorting the array in-place. It's O(n log n) complexity, better than the O(n^2) accepted solution.

public int findPopular(int[] a) {

    if (a == null || a.length == 0)
        return 0;

    Arrays.sort(a);

    int previous = a[0];
    int popular = a[0];
    int count = 1;
    int maxCount = 1;

    for (int i = 1; i < a.length; i++) {
        if (a[i] == previous)
            count++;
        else {
            if (count > maxCount) {
                popular = a[i-1];
                maxCount = count;
            }
            previous = a[i];
            count = 1;
        }
    }

    return count > maxCount ? a[a.length-1] : popular;

}
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OK, why the downvote? I posted my answer before the OP edited the question asking for keeping it native –  Óscar López Dec 17 '11 at 15:27
  1. Take a map to map element - > count
  2. Iterate through array and process the map
  3. Iterate through map and find out the popular
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Good answer. You may want to mention that if the numbers in the original are limited to a relatively small max (say, 100 or 1000) you could use an array instead of a map. –  dasblinkenlight Dec 17 '11 at 15:09
    
@dasb Map is fine I don't see any disadvantage of it against any advantages of array –  Jigar Joshi Dec 17 '11 at 15:12
    
how can i do it native? with the help of temp array only –  SexyMF Dec 17 '11 at 15:16
    
@dasb Coders new to Java often find arrays easier to understand than maps. Considering the wording (and indeed the content of the question) there is no doubt in my mind that the OP is new to programming (and not just to programming in Java). This is very likely his homework. –  dasblinkenlight Dec 17 '11 at 15:17
    
You have a data array now what you need is count array, for example if your 0th element in data array is 1 and first is 2 so in oyur count array you should hold 1 that is the count for 1 and so on.. –  Jigar Joshi Dec 17 '11 at 15:20

This is the wrong syntax. When you create an anonymous array you MUST NOT give its size.

When you write the following code :

    new int[] {1,23,4,4,5,5,5};

You are here creating an anonymous int array whose size will be determined by the number of values that you provide in the curly braces.

You can assign this a reference as you have done, but this will be the correct syntax for the same :-

    int[] a = new int[]{1,2,3,4,5,6,7,7,7,7};

Now, just Sysout with proper index position:

    System.out.println(a[7]);
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I seriously doubt that that's the OP's question. –  dasblinkenlight Dec 17 '11 at 15:12

this one without maps

 public class MAIN {


        public static void main(String[] args) {
            int[] a = new int[]{1,2,3,4,5,6,7,7,7,7};
            System.out.println(getMostPopularElement(a));

        }

        private static int getMostPopularElement(int[] a){

            int maxElementIndex = getArrayMaximumElementIndex(a); 
            int[] b= new int[a[maxElementIndex]+1];
            for(int i = 0; i<a.length;i++){
                   ++b[a[i]];
            }
            return getArrayMaximumElementIndex(b);
        }

        private static int getArrayMaximumElementIndex(int[] a) {
            int maxElementIndex = 0;
            for(int i = 1;i<a.length;i++){
                if(a[i]>=a[maxElementIndex]){
                    maxElementIndex = i;
                }
            }
            return maxElementIndex;
        }



    }

You only have to change some code if your array can have elements which are <0. And this algorithm is usefull when your array items are not big numbers.

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Assuming your array is sorted (like the one you posted) you could simply iterate over the array and count the longest segment of elements, it's something like @narek.gevorgyan's post but without the awfully big array, and it uses the same amount of memory regardless of the array's size:

private static int getMostPopularElement(int[] a){
    int counter = 0, curr, maxvalue, maxcounter = -1;
    maxvalue = curr = a[0];

    for (int e : a){
        if (curr == e){
            counter++;
        } else {
            if (counter > maxcounter){
                maxcounter = counter;
                maxvalue = curr;
            }
            counter = 0;
            curr = e;
        }
    }
    if (counter > maxcounter){
        maxvalue = curr;
    }

    return maxvalue;
}


public static void main(String[] args) {
    System.out.println(getMostPopularElement(new int[]{1,2,3,4,5,6,7,7,7,7}));
}

If the array is not sorted, sort it with Arrays.sort(a);

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If you don't want to use a map, then just follow these steps:

  1. Sort the array (using Arrays.sort())
  2. Use a variable to hold the most popular element (mostPopular), a variable to hold its number of occurrences in the array (mostPopularCount), and a variable to hold the number of occurrences of the current number in the iteration (currentCount)
  3. Iterate through the array. If the current element is the same as mostPopular, increment currentCount. If not, reset currentCount to 1. If currentCount is > mostPopularCount, set mostPopularCount to currentCount, and mostPopular to the current element.
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Yeah, it is obviously better than my answer. –  narek.gevorgyan Dec 17 '11 at 15:35
    
But maybe his array has very big size with small numbers. In that case mine is better. –  narek.gevorgyan Dec 17 '11 at 15:36

Seems like you are looking for the Mode value (Statistical Mode) , have a look at Apache's Docs for Statistical functions.

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Like this:

public class TestCountArray {

    public static Map<Integer, Integer> countElementOcurrences(int[] array) {

        Map<Integer, Integer> countMap = new HashMap<Integer, Integer>();

        for (int element : array) {
            Integer count = countMap.get(element);
            count = (count == null) ? 1 : count + 1;
            countMap.put(element, count);
        }

        return countMap;
    }

    public static Integer mostOcurrencesElement(int[] array) {
        Map<Integer, Integer> countMap = countElementOcurrences(array);

        int maxCount = 0;
        Integer element = null;
        for (Integer e : countMap.keySet()) {
            if (countMap.get(e) > maxCount) {
                element = e;
                maxCount = countMap.get(e);
            }
        }

        return element;

    }

    public static void main(String[] args) {

        int[] a = new int[] {1,2,3,4,5,6,7,7,7,7}; 

        System.out.println (mostOcurrencesElement(a));

    }

}
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