Find the Missing Number
You are given a list of n-1 integers and these integers are in the range of 1 to n. There are no duplicates in the list. One of the integers is missing from the list. Write an efficient code to find the missing integer.
Example:
Input: arr[] = {1, 2, 4, 6, 3, 7, 8}
Output: 5
Explanation: The missing number between 1 to 8 is 5Input: arr[] = {1, 2, 3, 5}
Output: 4
Explanation: The missing number between 1 to 5 is 4
Method 1: This method uses the technique of the Summation formula.
- Approach: The length of the array is n-1. So, the sum of all n elements i.e. sum of numbers from 1 to n can be calculated using the formula n*(n+1)/2. Now find the sum of all the elements in the array and subtract it from the sum of the first n natural numbers, it will give us the value of the missing element.
- Algorithm:
- Calculate the sum of the first n natural numbers as sumtotal= n*(n+1)/2
- Create a variable sum to store the sum of the array elements.
- Traverse the array from start to end.
- Update the value of sum as sum = sum + array[i]
- Print the missing number as SumTotal – sum
Below is the implementation of the above approach:
C++14
#include <bits/stdc++.h>using namespace std; // Function to get the missing numberint getMissingNo(int a[], int n){ int total = (n + 1) * (n + 2) / 2; for (int i = 0; i < n; i++) total -= a[i]; return total;} // Driver Codeint main(){ int arr[] = { 1, 2, 4, 5, 6 }; int n = sizeof(arr) / sizeof(arr[0]); int miss = getMissingNo(arr, n); cout << miss;} |
C
#include <stdio.h> /* getMissingNo takes array and size of array as arguments*/int getMissingNo(int a[], int n){ int i, total; total = (n + 1) * (n + 2) / 2; for (i = 0; i < n; i++) total -= a[i]; return total;} /*program to test above function */int main(){ int a[] = { 1, 2, 4, 5, 6 }; int miss = getMissingNo(a, 5); printf("%d", miss); getchar();} |
Java
// Java program to find missing Numberimport java.util.*;import java.util.Arrays;class GFG { public static int findDisappearedNumbers(int[] nums) { int n=nums.length; int sum=((n+1)*(n+2))/2; for(int i=0;i<n;i++) sum-=nums[i]; return sum; } public static void main(String[] args) { int[] a = { 1, 2, 4, 5, 6 }; System.out.println(findDisappearedNumbers(a)); }} |
Python
# getMissingNo takes list as argumentdef getMissingNo(A): n = len(A) total = (n + 1)*(n + 2)/2 sum_of_A = sum(A) return total - sum_of_A # Driver program to test the above functionA = [1, 2, 4, 5, 6]miss = getMissingNo(A)print(miss)# This code is contributed by Pratik Chhajer |
C#
// C# program to find missing Numberusing System; class GFG { // Function to ind missing number static int getMissingNo(int[] a, int n) { int total = (n + 1) * (n + 2) / 2; for (int i = 0; i < n; i++) total -= a[i]; return total; } /* program to test above function */ public static void Main() { int[] a = { 1, 2, 4, 5, 6 }; int miss = getMissingNo(a, 5); Console.Write(miss); }} // This code is contributed by Sam007_ |
PHP
<?php// PHP program to find// the Missing Number // getMissingNo takes array and// size of array as argumentsfunction getMissingNo ($a, $n){ $total = ($n + 1) * ($n + 2) / 2; for ( $i = 0; $i < $n; $i++) $total -= $a[$i]; return $total;} // Driver Code$a = array(1, 2, 4, 5, 6);$miss = getMissingNo($a, 5);echo($miss); // This code is contributed by Ajit.?> |
Javascript
<script> // Function to get the missing number function getMissingNo(a, n) { let total = Math.floor((n + 1) * (n + 2) / 2); for (let i = 0; i < n; i++) total -= a[i]; return total; } // Driver Code let arr = [ 1, 2, 4, 5, 6 ]; let n = arr.length; let miss = getMissingNo(arr, n); document.write(miss); // This code is contributed by Surbhi Tyagi </script> |
Output
3
Complexity Analysis:
- Time Complexity: O(n).
Only one traversal of the array is needed. - Space Complexity: O(1).
No extra space is needed
Modification for Overflow :
Approach: The approach remains the same but there can be an overflow if n is large. In order to avoid integer overflow, pick one number from the known numbers and subtract that one number from the given numbers. This way there won’t be any Integer Overflow.
Algorithm:
- Create a variable sum = 1 which will store the missing number and a counter variable c = 2.
- Traverse the array from start to end.
- Update the value of sum as sum = sum – array[i] + c and increment c as c++.
- Print the missing number as a sum.
Below is the implementation of the above approach:
C++
#include <bits/stdc++.h>using namespace std; int getMissingNo(int a[], int n){ int i, total = 1; for (i = 2; i <= (n + 1); i++) { total += i; total -= a[i - 2]; } return total;} // Driver Programint main(){ int arr[] = { 1, 2, 3, 5 }; cout << getMissingNo(arr, sizeof(arr) / sizeof(arr[0])); return 0;} // This code is contributed by Aditya Kumar (adityakumar129) |
C
#include <stdio.h> int getMissingNo(int a[], int n){ int i, total = 1; for (i = 2; i <= (n + 1); i++) { total += i; total -= a[i - 2]; } return total;} // Driver Programint main(){ int arr[] = { 1, 2, 3, 5 }; printf("%d",getMissingNo(arr, sizeof(arr) / sizeof(arr[0]))); return 0;} // This code is contributed by Aditya Kumar (adityakumar129) |
Java
// Java implementationclass GFG { static int getMissingNo(int a[], int n) { int total = 1; for (int i = 2; i <= (n + 1); i++) { total += i; total -= a[i - 2]; } return total; } // Driver Code public static void main(String[] args) { int[] arr = { 1, 2, 3, 5 }; System.out.println(getMissingNo(arr, arr.length)); }} // This code is contributed by Aditya Kumar (adityakumar129) |
Python3
# a represents the array# n : Number of elements in array adef getMissingNo(a, n): i, total = 0, 1 for i in range(2, n + 2): total += i total -= a[i - 2] return total # Driver Codearr = [1, 2, 3, 5]print(getMissingNo(arr, len(arr))) # This code is contributed by Mohit kumar |
C#
using System; class GFG{ // a represents the array// n : Number of elements in array astatic int getMissingNo(int[] a, int n) { int i, total = 1; for ( i = 2; i <= (n + 1); i++) { total += i; total -= a[i - 2]; } return total; } // Driver Codepublic static void Main() { int[] arr = {1, 2, 3, 5}; Console.Write(getMissingNo(arr, (arr.Length))); // Console.Write(getMissingNo(arr, 4));}}// This code is contributed by SoumikMondal |
Javascript
<script> // a represents the array// n : Number of elements in array afunction getMissingNo(a) { let n = a.length; let i, total=1; for (i = 2; i<= (n+1); i++) { total += i; total -= a[i-2]; } return total; } //Driver Program let arr = [1, 2, 3, 5]; document.write(getMissingNo(arr)); //This code is contributed by Mayank Tyagi </script> |
Output
4
Complexity Analysis:
- Time Complexity: O(n).
Only one traversal of the array is needed. - Space Complexity: O(1).
No extra space is needed
Thanks to Sahil Rally for suggesting this improvement.
Method 2: This method uses the technique of XOR to solve the problem.
Approach:
XOR has certain properties
- Assume a1 ^ a2 ^ a3 ^ …^ an = a and a1 ^ a2 ^ a3 ^ …^ an-1 = b
- Then a ^ b = an
Algorithm:
- Create two variables a = 0 and b = 0
- Run a loop from 1 to n with i as counter.
- For every index, update a as a = a ^ i
- Now traverse the array from start to end.
- For every index, update b as b = b ^ array[i].
- Print the missing number as a ^ b.
Below is the implementation of the above approach:
C++
#include <bits/stdc++.h>using namespace std; // Function to get the missing numberint getMissingNo(int a[], int n){ // For xor of all the elements in array int x1 = a[0]; // For xor of all the elements from 1 to n+1 int x2 = 1; for (int i = 1; i < n; i++) x1 = x1 ^ a[i]; for (int i = 2; i <= n + 1; i++) x2 = x2 ^ i; return (x1 ^ x2);} // Driver Codeint main(){ int arr[] = { 1, 2, 4, 5, 6 }; int n = sizeof(arr) / sizeof(arr[0]); int miss = getMissingNo(arr, n); cout << miss;} |
C
#include <stdio.h> /* getMissingNo takes array and size of array as arguments*/int getMissingNo(int a[], int n){ int i; int x1 = a[0]; /* For xor of all the elements in array */ int x2 = 1; /* For xor of all the elements from 1 to n+1 */ for (i = 1; i < n; i++) x1 = x1 ^ a[i]; for (i = 2; i <= n + 1; i++) x2 = x2 ^ i; return (x1 ^ x2);} /*program to test above function */int main(){ int a[] = { 1, 2, 4, 5, 6 }; int miss = getMissingNo(a, 5); printf("%d", miss); getchar();} |
Java
// Java program to find missing Number// using xorclass Main { // Function to find missing number static int getMissingNo(int a[], int n) { int x1 = a[0]; int x2 = 1; /* For xor of all the elements in array */ for (int i = 1; i < n; i++) x1 = x1 ^ a[i]; /* For xor of all the elements from 1 to n+1 */ for (int i = 2; i <= n + 1; i++) x2 = x2 ^ i; return (x1 ^ x2); } /* program to test above function */ public static void main(String args[]) { int a[] = { 1, 2, 4, 5, 6 }; int miss = getMissingNo(a, 5); System.out.println(miss); }} |
Python3
# Python3 program to find# the missing Number# getMissingNo takes list as argument def getMissingNo(a, n): x1 = a[0] x2 = 1 for i in range(1, n): x1 = x1 ^ a[i] for i in range(2, n + 2): x2 = x2 ^ i return x1 ^ x2 # Driver program to test above functionif __name__=='__main__': a = [1, 2, 4, 5, 6] n = len(a) miss = getMissingNo(a, n) print(miss) # This code is contributed by Yatin Gupta |
C#
// C# program to find missing Number// using xorusing System; class GFG { // Function to find missing number static int getMissingNo(int[] a, int n) { int x1 = a[0]; int x2 = 1; /* For xor of all the elements in array */ for (int i = 1; i < n; i++) x1 = x1 ^ a[i]; /* For xor of all the elements from 1 to n+1 */ for (int i = 2; i <= n + 1; i++) x2 = x2 ^ i; return (x1 ^ x2); } /* driver program to test above function */ public static void Main() { int[] a = { 1, 2, 4, 5, 6 }; int miss = getMissingNo(a, 5); Console.Write(miss); }} // This code is contributed by Sam007_ |
PHP
<?php// PHP program to find// the Missing Number// getMissingNo takes array and // size of array as argumentsfunction getMissingNo($a, $n){ // For xor of all the // elements in array $x1 = $a[0]; // For xor of all the // elements from 1 to n + 1 $x2 = 1; for ($i = 1; $i < $n; $i++) $x1 = $x1 ^ $a[$i]; for ($i = 2; $i <= $n + 1; $i++) $x2 = $x2 ^ $i; return ($x1 ^ $x2);} // Driver Code$a = array(1, 2, 4, 5, 6);$miss = getMissingNo($a, 5);echo($miss); // This code is contributed by Ajit.?> |
Javascript
<script> // Function to get the missing number function getMissingNo(a, n) { // For xor of all the elements in array var x1 = a[0]; // For xor of all the elements from 1 to n+1 var x2 = 1; for (var i = 1; i < n; i++) x1 = x1 ^ a[i]; for (var i = 2; i <= n + 1; i++) x2 = x2 ^ i; return x1 ^ x2; } // Driver Code var arr = [1, 2, 4, 5, 6]; var n = arr.length; var miss = getMissingNo(arr, n); document.write(miss); // This code is contributed by rdtank. </script> |
Output
3
Complexity Analysis:
- Time Complexity: O(n).
Only one traversal of the array is needed. - Space Complexity: O(1).
No extra space is needed.
Method 3: This method will work only in python.
Approach:
Take the sum of all elements in the array and subtract that from the sum of n+1 elements. For Eg:
If my elements are li=[1,2,4,5] then take the sum of all elements in li and subtract it from the sum of len(li)+1 elements. The following code shows the demonstration.
C++
// C++ program to find the missing Number#include <bits/stdc++.h>using namespace std; // getMissingNo takes list as argumentint getMissingNo(int a[], int n){ int n_elements_sum = n * (n + 1) / 2; int sum = 0; for (int i = 0; i < n - 1; i++) sum += a[i]; return n_elements_sum - sum;} // Driver codeint main(){ int a[] = { 1, 2, 4, 5, 6 }; int n = sizeof(a) / sizeof(a[0]) + 1; int miss = getMissingNo(a, n); cout << (miss); return 0;} // This code is contributed by Aditya Kumar (adityakumar129) |
C
// C program to find the missing Number#include <stdio.h> // getMissingNo takes list as argumentint getMissingNo(int a[], int n){ int n_elements_sum = n * (n + 1) / 2; int sum = 0; for (int i = 0; i < n - 1; i++) sum += a[i]; return n_elements_sum - sum;} // Driver codeint main(){ int a[] = { 1, 2, 4, 5, 6 }; int n = sizeof(a) / sizeof(a[0]) + 1; int miss = getMissingNo(a, n); printf("%d",miss); return 0;} // This code is contributed by Aditya Kumar (adityakumar129) |
Java
// Java program to find the missing Numberclass GFG { // getMissingNo function for finding missing number static int getMissingNo(int a[], int n) { int n_elements_sum = n * (n + 1) / 2; int sum = 0; for (int i = 0; i < n - 1; i++) sum += a[i]; return n_elements_sum - sum; } // Driver code public static void main(String[] args) { int a[] = { 1, 2, 4, 5, 6 }; int n = a.length + 1; int miss = getMissingNo(a, n); System.out.print(miss); }} // This code is contributed by Aditya Kumar (adityakumar129) |
Python3
# Python3 program to find# the missing Number# getMissingNo takes list as argument def getMissingNo(a, n): n_elements_sum=n*(n+1)//2 return n_elements_sum-sum(a) # Driver program to test above functionif __name__=='__main__': a = [1, 2, 4, 5, 6] n = len(a)+1 miss = getMissingNo(a, n) print(miss) |
C#
// C# program to implement // the above approachusing System; class GFG{ // Function to find missing // number static int getMissingNo(int[] a, int n) { int n_elements_sum = (n * (n + 1) / 2); int sum = 0; for (int i = 0; i < n - 1; i++) sum = sum + a[i]; return (n_elements_sum - sum); } // Driver codepublic static void Main() { int[] a = {1, 2, 4, 5, 6}; int miss = getMissingNo(a, 5); Console.Write(miss); } } // This code is contributed by Virusbuddah |
Javascript
<script> // JavaScript program to find// the missing Number // getMissingNo takes list // as argument function getMissingNo(a,n) { let n_elements_sum =Math.floor (n * (n + 1) / 2 ); let sum = 0; for(let i = 0; i < n - 1; i++) sum += a[i]; return n_elements_sum-sum;} // Driver Code let a = [1, 2, 4, 5, 6]; let n=a.length+1; let miss=getMissingNo(a,n) document.write(miss); // This code contributed by Rajput-Ji </script> |
Output
3
Time Complexity: O(n)
Auxiliary Space: O(1)
Method 4: Efficient Approach using (Cyclic Sort)
Approach: All the given array numbers are sorted and in the range of 1 to n-1. If the range is 1 to N then every array element will be at the location, index == value-1 i.e. means at the 0th index value will be 1 similarly at the 1st index position value will be 2 and so on till nth value.
Below is the implementation of the above approach:
Java
// java program to check missingNoimport java.util.*;public class MissingNumber { public static void main(String[] args) { int[] arr = { 1, 2, 4, 5, 6 }; int n = arr.length; int ans = getMissingNo(arr, n); System.out.println(ans); } static int getMissingNo(int[] arr, int n) { int i = 0; while (i < n) { // as array is of 1 based indexing so the // correct position or index number of each // element is element-1 i.e. 1 will be at 0th // index similarly 2 correct index will 1 so // on... int correctpos = arr[i] - 1; if (arr[i] < n && arr[i] != arr[correctpos]) { // if array element should be lesser than // size and array element should not be at // its correct postion then only swap with // its correct positioin or index value swap(arr, i, correctpos); } else { // if element is at its correct position // just increment i and check for remaining // array elements i++; } } // check for missing elemnt by comparing elements with their index values for (int index = 0; index < arr.length; index++) { if (arr[index] != index + 1) { return index + 1; } } return arr.length; } static void swap(int[] arr, int i, int correctpos) { // swap elements with their correct indexes int temp = arr[i]; arr[i] = arr[correctpos]; arr[correctpos] = temp; }}// this code is contributed by devendra solunke |
Python3
# Python3 program to check missingNodef getMissingNo(arr, n) : i = 0; while (i < n) : # as array is of 1 based indexing so the # correct position or index number of each # element is element-1 i.e. 1 will be at 0th # index similarly 2 correct index will 1 so # on... correctpos = arr[i] - 1; if (arr[i] < n and arr[i] != arr[correctpos]) : # if array element should be lesser than # size and array element should not be at # its correct postion then only swap with # its correct positioin or index value arr[i],arr[correctpos] = arr[correctpos], arr[i] else : # if element is at its correct position # just increment i and check for remaining # array elements i += 1; # check for missing elemnt by comparing elements with their index values for index in range(n) : if (arr[index] != index + 1) : return index + 1; return n; if __name__ == "__main__" : arr = [ 1, 2, 4, 5, 6 ]; n = len(arr); print(getMissingNo(arr, n)); # This Code is Contributed by AnkThon |
C#
// C# program to implement// the above approachusing System;class GFG { // Function to find missing // number static int getMissingNo(int[] arr, int n) { int i = 0; while (i < n) { // as array is of 1 based indexing so the // correct position or index number of each // element is element-1 i.e. 1 will be at 0th // index similarly 2 correct index will 1 so // on... int correctpos = arr[i] - 1; if (arr[i] < n && arr[i] != arr[correctpos]) { // if array element should be lesser than // size and array element should not be at // its correct postion then only swap with // its correct positioin or index value swap(arr, i, correctpos); } else { // if element is at its correct position // just increment i and check for remaining // array elements i++; } } // check for missing elemnt by comparing elements // with their index values for (int index = 0; index < n; index++) { if (arr[index] != index + 1) { return index + 1; } } return n; } static void swap(int[] arr, int i, int correctpos) { // swap elements with their correct indexes int temp = arr[i]; arr[i] = arr[correctpos]; arr[correctpos] = temp; } // Driver code public static void Main() { int[] arr = { 1, 2, 4, 5, 6 }; int n = arr.Length; int ans = getMissingNo(arr, n); Console.Write(ans); }} // This code is contributed by devendra solunke |
Javascript
// javascript program to check missingNo<script> var arr = [ 1, 2, 4, 5, 6 ]; var n = arr.length; var ans = getMissingNo(arr, n); console.log(ans); function getMissingNo(arr, n) { var i = 0; while (i < n) { // as array is of 1 based indexing so the // correct position or index number of each // element is element-1 i.e. 1 will be at 0th // index similarly 2 correct index will 1 so // on... var correctpos = arr[i] - 1; if (arr[i] < n && arr[i] != arr[correctpos]) { // if array element should be lesser than // size and array element should not be at // its correct postion then only swap with // its correct positioin or index value swap(arr, i, correctpos); } else { // if element is at its correct position // just increment i and check for remaining // array elements i++; } } // check for missing elemnt by comparing elements with their index values for (var index = 0; index < arr.length; index++) { if (arr[index] != index + 1) { return index + 1; } } return n; } function swap(arr, i, correctpos) { // swap elements with their correct indexes var temp = arr[i]; arr[i] = arr[correctpos]; arr[correctpos] = temp; }</script>// this code is contributed by devendra solunke |
Output
3
Time Complexity: O(N) requires (n-1) comparisons, so -1 is constant hence we can eliminate it, and the remaining n is complexity for the Best Case.
If an array is not sorted it will be the worst case for an algorithm and it will take O(N2) complexity. let’s see how we can calculate worst-case complexity.
1 + 2 + 3 + 4 . . . . . . . . . . (n-1) comparisons will required so the sum of all natural numbers can be calculated using n*(n+1)/2. Hence we can conclude that time complexity is N2
Space Complexity: O( 1)
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