C++ Program to Find a pair with the given difference
Last Updated :
03 May, 2023
Given an unsorted array and a number n, find if there exists a pair of elements in the array whose difference is n.
Examples:
Input: arr[] = {5, 20, 3, 2, 50, 80}, n = 78
Output: Pair Found: (2, 80)
Input: arr[] = {90, 70, 20, 80, 50}, n = 45
Output: No Such Pair
The simplest method is to run two loops, the outer loop picks the first element (smaller element) and the inner loop looks for the element picked by outer loop plus n. Time complexity of this method is O(n^2).
We can use sorting and Binary Search to improve time complexity to O(nLogn). The first step is to sort the array in ascending order. Once the array is sorted, traverse the array from left to right, and for each element arr[i], binary search for arr[i] + n in arr[i+1..n-1]. If the element is found, return the pair.
Both first and second steps take O(nLogn). So overall complexity is O(nLogn).
The second step of the above algorithm can be improved to O(n). The first step remain same. The idea for second step is take two index variables i and j, initialize them as 0 and 1 respectively. Now run a linear loop. If arr[j] – arr[i] is smaller than n, we need to look for greater arr[j], so increment j. If arr[j] – arr[i] is greater than n, we need to look for greater arr[i], so increment i. Thanks to Aashish Barnwal for suggesting this approach.
The following code is only for the second step of the algorithm, it assumes that the array is already sorted.
C++
#include <bits/stdc++.h>
using namespace std;
bool findPair( int arr[], int size, int n)
{
int i = 0;
int j = 1;
while (i < size && j < size)
{
if (i != j && arr[j] - arr[i] == n)
{
cout << "Pair Found: (" << arr[i] <<
", " << arr[j] << ")" ;
return true ;
}
else if (arr[j]-arr[i] < n)
j++;
else
i++;
}
cout << "No such pair" ;
return false ;
}
int main()
{
int arr[] = {1, 8, 30, 40, 100};
int size = sizeof (arr)/ sizeof (arr[0]);
int n = 60;
findPair(arr, size, n);
return 0;
}
|
Output
Pair Found: (40, 100)
Time Complexity: O(n*log(n)) [Sorting is still required as first step], Where n is number of element in given array.
Efficient Approach: Hashing can also be used to solve this problem. We first create an empty hash table HT. We then traverse in the array and use array elements as hash keys and enter them in HT. While traversing, if the given difference is 0 then we will check if any element is occurring more than one time or not. If n!=0, then we again Traverse the array and look for the value n + arr[i] in HT(hash table) as the difference between n+arr[i] and arr[i] is n.
Below is the code for the above approach.
C++
#include <bits/stdc++.h>
using namespace std;
bool findPair( int arr[], int size, int n)
{
unordered_map< int , int > mp;
for ( int i = 0; i < size; i++) {
mp[arr[i]]++;
if (n==0 && mp[arr[i]] > 1)
return true ;
}
if (n==0)
return false ;
for ( int i = 0; i <= size-1; i++)
{
if (mp[arr[i]+n])
{
cout << "Pair Found: " << "(" << arr[i] << ", " << n + arr[i] << ")" ;
return true ;
}
}
cout << "No such pair" ;
return false ;
}
int main()
{
int arr[] = { 1, 8, 30, 40, 100 };
int size = sizeof (arr) / sizeof (arr[0]);
int n = 60;
findPair(arr, size, n);
return 0;
}
|
Output
Pair Found: (40, 100)
Time Complexity: O(n)
Auxiliary Space: O(n)
Please refer complete article on Find a pair with the given difference for more details!
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