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Make an algorithm to find the element which is repeated n times in the 2n array I had implemented with a binary tree,and each node having counter associated with it. The node with max count is returned . Does any body have more optimal solution better than this.

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closed as not a real question by Kev Mar 9 '13 at 23:48

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

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3 Answers

Well this seems to trivial to be a real question, but here's what I would do - probably not the optimal solution but it's the most simple I can think of.

First you said you need to find an element that appears n-times, but you didn't mention if you have to check if any items appear n-times. So I'll assume we know that there is an Item in the Array that does.

arr[0..2n-1]  //some array with 2n elements
quicksort(arr);    
if (arr[n] == arr[n-1])
  return arr[n]
else if (arr[n-1] == arr[0])
  return arr[0]
else 
  return arr[n]

this should work, cause in a sorted array of the size 2n all the n elements will be together, so you have just those three options:

  1. that the element is repeated in the first n elements, that's the (arr[0] == arr[n]) or
  2. the element is somewhere in the middle of the array, witch means that the center elements have to be the same (arr[n]== arr[n-1])
  3. and the obvious one

now what to do if we don't know if any element appears n times, we have to check all the possible candidates (the middle to elements)

arr[] //with 2n elemenets
counter1 = 0;
counter2 = 0;
quicksort(arr);
for (i=0; i<2n ;i++){
  if (arr[i]==arr[n-1]) counter1++;
  if (arr[i]==arr[n]) counter2++;
}
if (counter1 == n) return arr[n-1]
if (counter2 == n) return arr[n]
return "bummer"

PS: stuff like this is really fun to do, and great to get a grasp on programming. I hope you try a few more other ways of solving this.

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Isn't this similar to Find majority element in array. Time complexity is O(n), since it requires two passes on the array.

The modified code is given below

int findMajorityElement(int * arr, int size) { //size is 2n in this example
    int count = 0, i, majorityElement;
    for (i = 0 ;  < size ; i++) { // 1st pass
        if(count == 0) {
            majorityElement = arr[i];
        }
        if(arr[i] == majorityElement) 
           count++;
        else 
           count--;
      }
    count = 0;
    for (i=0; i < size ; i++) { // 2nd pass
        if (arr[i] == majorityElement) {
            count++;
        }
    if ( count == size/2) {
        return majorityElement;
    }
    else return -1; //no such element is present
}
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include

main()

{

int arr[10],i,res,count=0;

printf("Enter the array elements:\t");

for(i=0;i<10;i++)

scanf("%d",&arr[i]);

for(i=0;i<8;i++)

{

    if(arr[i]==arr[i+1] || arr[i]==arr[i+2])

     {

         res=arr[i];

         break;

     }

    else if(arr[i+1]==arr[i+2])

    {

        res=arr[i+1];

        break;

    }

}

for(i=0;i<10;i++)

  if(arr[i]==res)

   count++;

if(count==5)

 printf("true, no. repeated is:\t%d",res);

else printf("false");

return 0;

}

The above code is also giving correct output. I don't know why we are going for complex code. correct me if I am wrong somewhere.

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