-1

I have solved the hackerrank Sock Merchant problem But I want to reduce the complexity of the code(I am not sure that it is possible or not).

John works at a clothing store. He has a large pile of socks that he must pair by color for sale. Given an array of integers representing the color of each sock, determine how many pairs of socks with matching colors there are.

For example, there are n=7 socks with colors ar= [1,2,1,2,1,3,2]. There is one pair of color 1 and one of color 2. There are three odd socks left, one of each color. The number of pairs is 2.

Function Description

Complete the sockMerchant function in the editor below. It must return an integer representing the number of matching pairs of socks that are available.

sockMerchant has the following parameter(s):

  • n: the number of socks in the pile

  • ar: the colors of each sock

Input Format

The first line contains an integer n, the number of socks represented in ar. The second line contains n space-separated integers describing the colors ar[i] of the socks in the pile.

Constraints

  • 1 <= n <= 100

  • 1 <= ar[i] <= 100 where 0 <= i < n

Output Format

Return the total number of matching pairs of socks that John can sell.

Sample Input

9
10 20 20 10 10 30 50 10 20

Sample Output

3

My solutions :

package com.hackerrank.test;

public class Solution {
    public static void main(String[] args) {
        //Initialize array
        int[] arr = new int[]{10, 20, 20, 10, 10, 30, 50, 10, 20};
        //Array fr will store frequencies of element


        System.out.println("---------------------------------------");
        System.out.println(" sockMerchant output " + sockMerchant(9, arr));
        System.out.println("---------------------------------------");

    }

    static int sockMerchant(int n, int[] ar) {
        int pairs = 0;
        int frequencyArray[] = new int[ar.length];
        int frequencyTemp = -1;
        for (int i = 0; i < ar.length; i++) {
            int count = 1;
            for (int j = i + 1; j < ar.length; j++) {
                if (ar[i] == ar[j]) {
                    count++;
                    frequencyArray[j] = frequencyTemp;
                }
            }
            if (frequencyArray[i] != frequencyTemp) {
                frequencyArray[i] = count;
            }
        }

        for (int i = 0; i < frequencyArray.length; i++) {
            if (frequencyArray[i] != frequencyTemp) {
                int divide = frequencyArray[i] / 2;
                pairs += divide;
            }
        }
        return pairs;
    }
}

And the output is :

    ---------------------------------------
    sockMerchant frequency 3
    ---------------------------------------
  • 2
    Code Review site is better suited for such questions. – PM 77-1 Nov 20 '19 at 17:50
  • 2
    I'm voting to close this question as off-topic because it is asking to review code that is already working. – ekhumoro Nov 20 '19 at 17:53
  • use arraylist. You can easily remove items from the list and eliminate the last for loop – DCR Nov 20 '19 at 17:55
2

You can solve this in a single pass (O(n)) using a HashSet, which has O(1) put and lookup time. Each element is already in the set, in which case it gets removed and the pair counter is incremented, or it's not, in which case you add it:

int[] arr = new int[]{10, 20, 20, 10, 10, 30, 50, 10, 20};

HashSet<Integer> unmatched = new HashSet<>();
int pairs = 0;
for(int i = 0; i < arr.length; i++) {
    if(!unmatched.add(arr[i])) {
        unmatched.remove(arr[i]);
        pairs++;
    }
}
  • 1
    I'd love to know what motivated the downvote. – Mad Physicist Nov 20 '19 at 18:17
  • @MAKAM. No, it wasn't you – Mad Physicist Nov 20 '19 at 22:57
-1

Yes, you can reduce the complexity of this to O(n). Iterate the input array just once and for each new element found create an entry in a hash map with a value of 1. If you find a repeated entry, increment the value of that entry in the map.

When you complete the pass, iterate the items in the map dividing their values by two, keep only the integer part of the division, and add the cumulative sum.

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