Given an Integer n, find the reverse of its digits.
Examples:Â Â
Input: n = 122
Output: 221
Explanation: By reversing the digits of number, number will change into 221.Input: n = 200
Output: 2
Explanation: By reversing the digits of number, number will change into 2.Input: n = 12345
Output: 54321
Explanation: By reversing the digits of number, number will change into 54321.
Reversing Digit by Digit
This idea for this approach is to repeatedly extract the last digit of
nusing the modulus operator (n % 10) and appending it to the reverse number (revNum). After extracting the digit, the numbernis reduced by dividing it by 10 (n = n / 10). This process continues untilnbecomes 0. Finally, the reversed number (revNum) is returned.
#include <bits/stdc++.h>
using namespace std;
int reverseDigits(int n) {
int revNum = 0;
while (n > 0) {
revNum = revNum * 10 + n % 10;
n = n / 10;
}
return revNum;
}
int main() {
int n = 4562;
cout << reverseDigits(n);
return 0;
}
#include <stdio.h>
int reverseDigits(int n) {
int revNum = 0;
while (n > 0) {
revNum = revNum * 10 + n % 10;
n = n / 10;
}
return revNum;
}
int main() {
int n = 4562;
printf("%d",reverseDigits(n));
getchar();
return 0;
}
// Java program to reverse a number
class GfG {
static int reverseDigits(int n) {
int revNum = 0;
while (n > 0) {
revNum = revNum * 10 + n % 10;
n = n / 10;
}
return revNum;
}
public static void main(String[] args) {
int num = 4562;
System.out.println(reverseDigits(num));
}
}
n = 4562
rev = 0
while(n > 0):
a = n % 10
rev = rev * 10 + a
n = n // 10
print(rev)
// C# program to reverse a number
using System;
class GfG {
static int reverseDigits(int n) {
int revNum = 0;
while (n > 0) {
revNum = revNum * 10 + n % 10;
n = n / 10;
}
return revNum;
}
public static void Main() {
int num = 4562;
Console.Write(reverseDigits(num));
}
}
let num = 4562;
function reverseDigits(n) {
let revNum = 0;
while(n > 0)
{
revNum = revNum * 10 + n % 10;
n = Math.floor(n / 10);
}
return revNum;
}
// function call
console.log(reverseDigits(num));
Output
2654
Time Complexity - O(log n)
Space Complexity - O(1)
Using String
This approach reverses a number by converting it into a string, reversing the string, and then converting it back into an integer. This avoids manual digit manipulation by leveraging string operations. The string reversal is done using a built-in function, and the result is then converted back to an integer and returned. This method is straightforward but requires extra space for the string conversion.
// C++ program to reverse a number
#include <bits/stdc++.h>
using namespace std;
int reverseDigits(int n) {
// converting number to string
string s = to_string(n);
// reversing the string
reverse(s.begin(), s.end());
// converting string to integer
n = stoi(s);
// returning integer
return n;
}
int main() {
int n = 4562;
cout << reverseDigits(n);
return 0;
}
// C program to reverse a number
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
void reverse(char* begin, char* end) {
char temp;
while (begin < end) {
temp = *begin;
*begin++ = *end;
*end-- = temp;
}
}
void reverseWords(char* s) {
char* word_begin = s;
char* temp = s;
// Reversing individual words as explained in the first step
while (*temp) {
temp++;
if (*temp == '\0') {
reverse(word_begin, temp - 1);
}
else if (*temp == ' ') {
reverse(word_begin, temp - 1);
word_begin = temp + 1;
}
}
reverse(s, temp - 1);
}
int reverseDigits(int n) {
char strin[100];
sprintf(strin, "%d", n);
// reversing the string
reverseWords(strin);
// converting string to integer
n = atoi(strin);
return n;
}
int main() {
int n = 123456;
printf("%d\n",reverseDigits(n));
return 0;
}
// Java program to reverse a number
class GfG {
static int reversDigits(int n) {
// converting number to string
StringBuffer s
= new StringBuffer(String.valueOf(n));
// reversing the string
s.reverse();
// converting string to integer
n = Integer.parseInt(String.valueOf(s));
// returning integer
return n;
}
public static void main(String[] args) {
int n = 4562;
System.out.println(reversDigits(n));
}
}
# Python 3 program to reverse a number
def reversDigits(n):
# converting number to string
s = str(n)
# reversing the string
s = list(s)
s.reverse()
s = ''.join(s)
# converting string to integer
n = int(s)
return n
if __name__ == "__main__":
num = 4562
print(reversDigits(num))
// C# program to reverse a number
using System;
public class GfG {
static string ReverseString(string s) {
char[] array = s.ToCharArray();
Array.Reverse(array);
return new string(array);
}
static int reversDigits(int n) {
// converting number to string
string s = n.ToString();
// reversing the string
s = ReverseString(s);
// converting string to integer
n = int.Parse(s);
// returning integer
return n;
}
static public void Main() {
int n = 4562;
Console.Write(reversDigits(n));
}
}
// Javascript program to reverse a number
function reversDigits(n) {
// converting number to string
let s = n.toString().split("").reverse().join("");
// converting string to integer
n = parseInt(s);
// returning integer
return s;
}
// Driver Code
let n = 4562;
console.log(reversDigits(n));
Output
2654
Time Complexity - O(log n)
Space Complexity - O(1)
Note: The above program doesn't consider leading zeroes. For example, for 100 programs will print 1. If you want to print 001
Using String and Slicing in Python
The approach used is "Using Slicing". This technique involves converting the number into a string, then reversing that string by using slicing operations. After reversing, the string is converted back into a number. This method is simple and efficient but requires additional space for storing the string representation of the number.
# Python 3 program to reverse a number
def reversDigits(n):
# converting number to string
s = str(n)
# reversing the string
s = s[::-1]
# converting string to integer
n = int(s)
# returning integer
return n
if __name__ == "__main__":
n = 4562
print(reversDigits(n))
Output
2654
Time Complexity - O(n)
Space Complexity - O(n)