Given an array and k, we need to find the minimum operations needed to make GCD of the array equal or multiple of k. Here an operation means either increment or decrements an array element by 1.
Examples:
Input : a = { 4, 5, 6 }, k = 5
Output : 2
Explanation : We can increase 4 by 1 so that it becomes 5 and decrease 6 by 1 so that it becomes 5. Hence minimum operation will be 2.Input : a = { 4, 9, 6 }, k = 5
Output : 3
Explanation : Just like the previous example we can increase and decrease 4 and 6 by 1 and increase 9 by 1 so that it becomes 10. Now each element has GCD 5. Hence minimum operation will be 3.
Here we have to make the gcd of the array equal or multiple to k, which means there will be cases in which some elements are near k or to some of its multiple. So, to solve this we just have to make each array value equal to or multiple to K. By doing this we will achieve our solution as if every element is multiple of k then it’s GCD will be at least K. Now our next target is to convert the array elements in the minimum operation i.e. minimum number of increment and decrement. This minimum value of increment or decrement can be known only by taking the remainder of each number from K i.e. either we have to take the remainder value or (k-remainder) value, whichever is minimum among them.
Below is implementation of this approach:
C++
// CPP program to make GCD of array a multiple// of k.#include <bits/stdc++.h>using namespace std;int MinOperation(int a[], int n, int k){ int result = 0; for (int i = 0; i < n; ++i) { // If array value is not 1 and it is greater than k // then we can increase the or decrease the // remainder obtained by dividing k from the ith // value of array so that we get the number which is // either closer to k or its multiple if (a[i] != 1 && a[i] > k) result = result + min(a[i] % k, k - a[i] % k); else // Else we only have one choice which is to // increment the value to make equal to k result = result + k - a[i]; } return result;}// Driver codeint main(){ int arr[] = { 4, 5, 6 }; int n = sizeof(arr) / sizeof(arr[0]); int k = 5; cout << MinOperation(arr, n, k); return 0;}// This code is contributed by Sania Kumari Gupta |
C
// C program to make GCD of array a multiple of k.#include <stdio.h>// Find minimum between two numbers.int min(int num1, int num2){ return (num1 > num2) ? num2 : num1;}int MinOperation(int a[], int n, int k){ int result = 0; for (int i = 0; i < n; ++i) { // If array value is not 1 and it is greater than k // then we can increase the or decrease the // remainder obtained by dividing k from the ith // value of array so that we get the number which is // either closer to k or its multiple if (a[i] != 1 && a[i] > k) result = result + min(a[i] % k, k - a[i] % k); else // Else we only have one choice which is to // increment the value to make equal to k result = result + k - a[i]; } return result;}// Driver codeint main(){ int arr[] = { 4, 5, 6 }; int n = sizeof(arr) / sizeof(arr[0]); int k = 5; printf("%d", MinOperation(arr, n, k)); return 0;}// This code is contributed by Sania Kumari Gupta |
Java
// Java program to make GCD of array a multiple of k.import java.io.*;class GFG { static int MinOperation(int a[], int n, int k) { int result = 0; for (int i = 0; i < n; ++i) { // If array value is not 1 and it is greater // than k then we can increase the or decrease // the remainder obtained by dividing k from the // ith value of array so that we get the number // which is either closer to k or its multiple if (a[i] != 1 && a[i] > k) result = result + Math.min(a[i] % k, k - a[i] % k); else // Else we only have one choice which is // to increment the valueto make equal // to k result = result + k - a[i]; } return result; } // Driver code public static void main(String[] args) { int arr[] = { 4, 5, 6 }; int n = arr.length; int k = 5; System.out.println(MinOperation(arr, n, k)); }}// This code is contributed by Sania Kumari Gupta |
Python3
# Python 3 program to make GCD# of array a multiple of k.def MinOperation(a, n, k): result = 0 for i in range(n) : ''' If array value is not 1 and it is greater than k then we can increase the or decrease the remainder obtained by dividing k from the ith value of array so that we get the number which is either closer to k or its multiple ''' if (a[i] != 1 and a[i] > k) : result = (result + min(a[i] % k, k - a[i] % k)) else : # Else we only have one choice # which is to increment the value # to make equal to k result = result + k - a[i] return result# Driver codeif __name__ == "__main__": arr = [ 4, 5, 6 ] n = len(arr) k = 5 print(MinOperation(arr, n, k))# This code is contributed# by ChitraNayal |
C#
// C# program to make GCD // of array a multiple of k.using System;public class GFG{ static int MinOperation(int []a, int n, int k) { int result = 0; for (int i = 0; i < n; ++i) { // If array value is not 1 // and it is greater than k // then we can increase the // or decrease the remainder // obtained by dividing k // from the ith value of array // so that we get the number // which is either closer to k // or its multiple if (a[i] != 1 && a[i] > k) { result = result + Math.Min(a[i] % k, k - a[i] % k); } else { // Else we only have one // choice which is to // increment the value // to make equal to k result = result + k - a[i]; } } return result; } // Driver code static public void Main (){ int []arr = {4, 5, 6}; int n = arr.Length; int k = 5; Console.WriteLine(MinOperation(arr, n, k)); } } // This code is contributed // by Tushil |
PHP
<?php// PHP program to make // GCD of array a multiple// of k.function MinOperation($a, $n, $k){ $result = 0; for ($i = 0; $i < $n; ++$i) { // If array value is // not 1 and it is // greater than k then // we can increase the // or decrease the remainder // obtained by dividing // k from the ith value of // array so that we get the // number which is either // closer to k or its multiple if ($a[$i] != 1 && $a[$i] > $k) { $result = $result + min($a[$i] % $k, $k - $a[$i] % $k); } else { // Else we only have one // choice which is to // increment the value // to make equal to k $result = $result + $k - $a[$i]; } } return $result;}// Driver code$arr = array(4, 5, 6);$n = sizeof($arr) / sizeof($arr[0]);$k = 5;echo MinOperation($arr, $n, $k);// This code is contributed// by @ajit?> |
Javascript
<script> // Javascript program to make // GCD of array a multiple// of k.function MinOperation(a, n, k){ let result = 0; for (let i = 0; i < n; ++i) { // If array value is // not 1 and it is // greater than k then // we can increase the // or decrease the remainder // obtained by dividing // k from the ith value of // array so that we get the // number which is either // closer to k or its multiple if (a[i] != 1 && a[i] > k) { result = result + Math.min(a[i] % k, k - a[i] % k); } else { // Else we only have one // choice which is to // increment the value // to make equal to k result = result + k - a[i]; } } return result;}// Driver codelet arr = [4, 5, 6];let n = arr.length;let k = 5;document.write(MinOperation(arr, n, k));// This code is contributed// by _saurabh_jaiswal</script> |
Output
2
Complexity Analysis:
- Time Complexity: O(n)
- Auxiliary Space: O(1)
Feeling lost in the world of random DSA topics, wasting time without progress? It’s time for a change! Join our DSA course, where we’ll guide you on an exciting journey to master DSA efficiently and on schedule.
Ready to dive in? Explore our Free Demo Content and join our DSA course, trusted by over 100,000 neveropen!
Ready to dive in? Explore our Free Demo Content and join our DSA course, trusted by over 100,000 neveropen!
