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 in 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 from 1 to 8 is 5
Input: arr[] = {1, 2, 3, 5}
Output: 4
Explanation: The missing number from 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 first n natural numbers, it will be the value of the missing element.
Algorithm:
Calculate the sum of first n natural numbers as sumtotal= n*(n+1)/2
Create a variable sum to store the sum of 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
Implementation:
C++14
#include <bits/stdc++.h>
usingnamespacestd;
// Function to get the missing number
intgetMissingNo(inta[], intn)
{
inttotal = (n + 1) * (n + 2) / 2;
for(inti = 0; i < n; i++)
total -= a[i];
returntotal;
}
// Driver Code
intmain()
{
intarr[] = { 1, 2, 4, 5, 6 };
intn = sizeof(arr) / sizeof(arr[0]);
intmiss = getMissingNo(arr, n);
cout << miss;
}
C
#include <stdio.h>
/* getMissingNo takes array and size of array as arguments*/
intgetMissingNo(inta[], intn)
{
inti, total;
total = (n + 1) * (n + 2) / 2;
for(i = 0; i < n; i++)
total -= a[i];
returntotal;
}
/*program to test above function */
intmain()
{
inta[] = { 1, 2, 4, 5, 6 };
intmiss = getMissingNo(a, 5);
printf("%d", miss);
getchar();
}
Java
// Java program to find missing Number
importjava.util.*;
importjava.util.Arrays;
classGFG {
publicstaticList<Integer>
findDisappearedNumbers(int[] nums)
{
for(inti = 0; i < nums.length; i++) {
intindex = Math.abs(nums[i]);
if(nums[index - 1] > 0) {
nums[index - 1] *= -1;
}
}
List<Integer> res = newArrayList<>();
for(inti = 0; i < nums.length; i++) {
if(nums[i] > 0) {
res.add(i + 1);
}
}
returnres;
}
publicstaticvoidmain(String[] args)
{
int[] a = { 1, 2, 4, 5, 6};
System.out.println(findDisappearedNumbers(a));
}
}
Python
# getMissingNo takes list as argument
defgetMissingNo(A):
n =len(A)
total =(n +1)*(n +2)/2
sum_of_A =sum(A)
returntotal -sum_of_A
# Driver program to test the above function
A =[1, 2, 4, 5, 6]
miss =getMissingNo(A)
print(miss)
# This code is contributed by Pratik Chhajer
C#
// C# program to find missing Number
usingSystem;
classGFG {
// Function to ind missing number
staticintgetMissingNo(int[] a, intn)
{
inttotal = (n + 1) * (n + 2) / 2;
for(inti = 0; i < n; i++)
total -= a[i];
returntotal;
}
/* program to test above function */
publicstaticvoidMain()
{
int[] a = { 1, 2, 4, 5, 6 };
intmiss = 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 arguments
functiongetMissingNo ($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
functiongetMissingNo(a, n) {
let total = Math.floor((n + 1) * (n + 2) / 2);
for(let i = 0; i < n; i++)
total -= a[i];
returntotal;
}
// 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 overflow if n is large. In order to avoid integer overflow, pick one number from known numbers and subtract one number from given numbers. This way there won’t have Integer Overflow ever.
Algorithm:
Create a variable sum = 1 to which will store the missing number and a counter c = 2.
Traverse the array from start to end.
Update the value of sum as sum = sum – array[i] + c and update c as c++.
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.
Implementation:
C++
#include <bits/stdc++.h>
usingnamespacestd;
// Function to get the missing number
intgetMissingNo(inta[], intn)
{
// For xor of all the elements in array
intx1 = a[0];
// For xor of all the elements from 1 to n+1
intx2 = 1;
for(inti = 1; i < n; i++)
x1 = x1 ^ a[i];
for(inti = 2; i <= n + 1; i++)
x2 = x2 ^ i;
return(x1 ^ x2);
}
// Driver Code
intmain()
{
intarr[] = { 1, 2, 4, 5, 6 };
intn = sizeof(arr) / sizeof(arr[0]);
intmiss = getMissingNo(arr, n);
cout << miss;
}
C
#include <stdio.h>
/* getMissingNo takes array and size of array as arguments*/
intgetMissingNo(inta[], intn)
{
inti;
intx1 = a[0]; /* For xor of all the elements in array */
intx2 = 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 */
intmain()
{
inta[] = { 1, 2, 4, 5, 6 };
intmiss = getMissingNo(a, 5);
printf("%d", miss);
getchar();
}
Java
// Java program to find missing Number
// using xor
classMain {
// Function to find missing number
staticintgetMissingNo(inta[], intn)
{
intx1 = a[0];
intx2 = 1;
/* For xor of all the elements
in array */
for(inti = 1; i < n; i++)
x1 = x1 ^ a[i];
/* For xor of all the elements
from 1 to n+1 */
for(inti = 2; i <= n + 1; i++)
x2 = x2 ^ i;
return(x1 ^ x2);
}
/* program to test above function */
publicstaticvoidmain(String args[])
{
inta[] = { 1, 2, 4, 5, 6};
intmiss = getMissingNo(a, 5);
System.out.println(miss);
}
}
Python3
# Python3 program to find
# the mising Number
# getMissingNo takes list as argument
defgetMissingNo(a, n):
x1 =a[0]
x2 =1
fori inrange(1, n):
x1 =x1 ^ a[i]
fori inrange(2, n +2):
x2 =x2 ^ i
returnx1 ^ x2
# Driver program to test above function
if__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 xor
usingSystem;
classGFG {
// Function to find missing number
staticintgetMissingNo(int[] a, intn)
{
intx1 = a[0];
intx2 = 1;
/* For xor of all the elements
in array */
for(inti = 1; i < n; i++)
x1 = x1 ^ a[i];
/* For xor of all the elements
from 1 to n+1 */
for(inti = 2; i <= n + 1; i++)
x2 = x2 ^ i;
return(x1 ^ x2);
}
/* driver program to test above function */
publicstaticvoidMain()
{
int[] a = { 1, 2, 4, 5, 6 };
intmiss = getMissingNo(a, 5);
Console.Write(miss);
}
}
// This code is contributed by Sam007_
PHP
<?php
// PHP program to find
// the Misiing Number
// getMissingNo takes array and
// size of array as arguments
functiongetMissingNo($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
functiongetMissingNo(a, n)
{
// For xor of all the elements in array
varx1 = a[0];
// For xor of all the elements from 1 to n+1
varx2 = 1;
for(vari = 1; i < n; i++) x1 = x1 ^ a[i];
for(vari = 2; i <= n + 1; i++) x2 = x2 ^ i;
returnx1 ^ x2;
}
// Driver Code
vararr = [1, 2, 4, 5, 6];
varn = arr.length;
varmiss = 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 that from the sum of len(li)+1 elements. The following code shows the demonstration.
Auxiliary Space: O(1) Please write comments if you find anything incorrect, or you want to share more information about the topic discussed above.
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