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Find Pair Given Difference

Problem Description​

Given an array arr[] of size n and an integer x, return 1 if there exists a pair of elements in the array whose absolute difference is x, otherwise, return -1.

Examples​

Example 1:

Input:
n = 5
arr[] = {1, 8, 30, 40, 100}
x = 60

Output:
1

Explanation:
The pair (100, 40) has an absolute difference of 60.

Example 2:

Input:
n = 3
arr[] = {5, 10, 3}
x = 8

Output:
-1

Explanation:
There is no pair with an absolute difference of 8.

Your Task​

You don't need to read input or print anything. Your task is to complete the function findPair() which takes the array and its size and an integer x as parameters and returns 1 if there exists a pair with an absolute difference of x, otherwise, return -1.

Expected Time Complexity: O(N)

Expected Auxiliary Space: O(N)

Constraints​

  • 1 ≤ n ≤ 10^5
  • 1 ≤ arr[i] ≤ 10^5
  • 0 ≤ x ≤ 10^5

Problem Explanation​

To find if there exists a pair with the given difference x, we can use a set to store the elements as we iterate through the array. For each element arr[i], we check if (arr[i] + x) or (arr[i] - x) exists in the set. If either condition is true, we return 1. If we complete the iteration without finding any such pair, we return -1.

Code Implementation​

C++ Solution​

// Initial template for C++
#include <bits/stdc++.h>
using namespace std;

class Array {
public:
template <class T>
static void input(vector<T> &A, int n) {
for (int i = 0; i < n; i++) {
scanf("%d ", &A[i]);
}
}

template <class T>
static void print(vector<T> &A) {
for (int i = 0; i < A.size(); i++) {
cout << A[i] << " ";
}
cout << endl;
}
};

class Solution {
public:
int findPair(int n, int x, vector<int> &arr) {
unordered_set<int> s;
for (int i = 0; i < n; i++) {
if (s.find(arr[i] + x) != s.end() || s.find(arr[i] - x) != s.end()) {
return 1;
}
s.insert(arr[i]);
}
return -1;
}
};

// Driver code
int main() {
int t;
scanf("%d ", &t);
while (t--) {
int n;
scanf("%d", &n);

int x;
scanf("%d", &x);

vector<int> arr(n);
Array::input(arr, n);

Solution obj;
int res = obj.findPair(n, x, arr);

cout << res << endl;
}
return 0;
}

Example Walkthrough​

Example 1:

For the input:

n = 5
arr[] = {1, 8, 30, 40, 100}
x = 60
  1. Initialize an empty set s.
  2. Iterate through the array:
    • For arr[0] = 1: add 1 to the set.
    • For arr[1] = 8: add 8 to the set.
    • For arr[2] = 30: add 30 to the set.
    • For arr[3] = 40: add 40 to the set.
    • For arr[4] = 100: check if 100 - 60 = 40 is in the set (it is).
  3. Return 1 as the pair (100, 40) has an absolute difference of 60.

Example 2:

For the input:

n = 3
arr[] = {5, 10, 3}
x = 8
  1. Initialize an empty set s.
  2. Iterate through the array:
    • For arr[0] = 5: add 5 to the set.
    • For arr[1] = 10: add 10 to the set.
    • For arr[2] = 3: add 3 to the set.
  3. Return -1 as no pair with an absolute difference of 8 is found.

Solution Logic:​

  1. Use a set to store the elements.
  2. For each element, check if (arr[i] + x) or (arr[i] - x) exists in the set.
  3. Return 1 if a pair is found, otherwise return -1.

Time Complexity​

  • The time complexity is O(n)O(n) where (n)(n) is the number of elements in the array.

Space Complexity​

  • The auxiliary space complexity is O(n)O(n) as we use a set to store the elements.

References​