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Find all digits of given number N that are factors of N

Last Updated : 23 Jul, 2025
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Given a number N, the task is to print the digits of N which divide N.

Example:

Input: N = 234
Output: 2 3

Input: N = 555
Output: 5

Approach:  The idea is to iterate over all the digits of N and check whether that digit divides N or not. Follow the steps below to solve the problem:

  • Initialize the variables tem as N.
  • Traverse over the while loop till tem not equals to 0 and perform the following tasks:
    • Initialize the variable rem as tem%10.
    • If n%rem equals 0 then print rem as the answer.
    • Divide tem by 10.

Below is the implementation of the above approach.

C++
// C++ program for the above approach
#include <iostream>
using namespace std;

// Function that will print all the factors
void printDigitFactors(int n)
{

    // Storing n into a temporary variable
    int tem = n;

    // To store current digit
    int rem;

    // Iterating over all the digits
    while (tem != 0) {

        // Taking last digit
        int rem = tem % 10;
        if (n % rem == 0) {
            cout << rem << ' ';
        }

        // Removing last digit
        tem /= 10;
    }
}

// Driver Code:
int main()
{
    int N = 234;

    printDigitFactors(N);
}
Java
// Java program for the above approach
import java.io.*;
import java.lang.*;
import java.util.*;

class GFG {

  // Function that will print all the factors
  static void printDigitFactors(int n)
  {

    // Storing n into a temporary variable
    int tem = n;

    // To store current digit
    int rem;

    // Iterating over all the digits
    while (tem != 0) {

      // Taking last digit
      rem = tem % 10;
      if (n % rem == 0) {
        System.out.print(rem + " ");
      }

      // Removing last digit
      tem /= 10;
    }
  }

  public static void main (String[] args) {

    int N = 234;
    printDigitFactors(N);
  }
}

// This code is contributed by hrithikgarg03188.
Python3
# Python code for the above approach 

# Function that will print all the factors
def printDigitFactors(n):

    # Storing n into a temporary variable
    tem = n;

    # To store current digit
    rem = None

    # Iterating over all the digits
    while (tem != 0):

        # Taking last digit
        rem = tem % 10;
        if (n % rem == 0):
            print(rem, end= ' ');

        # Removing last digit
        tem = tem // 10
    
# Driver Code:
N = 234;
printDigitFactors(N);

  # This code is contributed by gfgking
C#
// C# program for the above approach
using System;
class GFG
{

  // Function that will print all the factors
  static void printDigitFactors(int n)
  {

    // Storing n into a temporary variable
    int tem = n;

    // To store current digit
    int rem = 0;

    // Iterating over all the digits
    while (tem != 0) {

      // Taking last digit
      rem = tem % 10;
      if (n % rem == 0) {
        Console.Write(rem + " ");
      }

      // Removing last digit
      tem /= 10;
    }
  }

  // Driver Code:
  public static void Main()
  {
    int N = 234;

    printDigitFactors(N);
  }
}

// This code is contributed by Samim Hossain Mondal.
JavaScript
<script>
        // JavaScript code for the above approach 

        // Function that will print all the factors
        function printDigitFactors(n) {

            // Storing n into a temporary variable
            let tem = n;

            // To store current digit
            let rem;

            // Iterating over all the digits
            while (tem != 0) {

                // Taking last digit
                let rem = tem % 10;
                if (n % rem == 0) {
                    document.write(rem + ' ');
                }

                // Removing last digit
                tem = Math.floor(tem / 10);
            }
        }

        // Driver Code:
        let N = 234;
        printDigitFactors(N);

  // This code is contributed by Potta Lokesh
    </script>

 
 


Output
3 2 


 

Time Complexity: O(K), where K is the number of digits in N
Auxiliary Space: O(1).


 


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