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Write program to calculate pow(x, n)

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Given two integers x and n, write a function to compute xn. We may assume that x and n are small and overflow doesn’t happen.

program to calculate pow(x,n)

Examples : 

Input : x = 2, n = 3
Output : 8

Input : x = 7, n = 2
Output : 49

Recommended Practice

Naive Approach: To solve the problem follow the below idea:

A simple solution to calculate pow(x, n) would multiply x exactly n times. We can do that by using a simple for loop

Below is the implementation of the above approach:

C++




// C++ program for the above approach
#include <bits/stdc++.h>
using namespace std;
 
// Naive iterative solution to calculate pow(x, n)
long power(int x, unsigned n)
{
    // Initialize result to 1
    long long pow = 1;
 
    // Multiply x for n times
    for (int i = 0; i < n; i++) {
        pow = pow * x;
    }
 
    return pow;
}
 
// Driver code
int main(void)
{
 
    int x = 2;
    unsigned n = 3;
 
    // Function call
    int result = power(x, n);
    cout << result << endl;
 
    return 0;
}


Java




// Java program for the above approach
 
import java.io.*;
 
class Gfg {
 
    // Naive iterative solution to calculate pow(x, n)
    public static long power(int x, int n)
    {
        // Initialize result by 1
        long pow = 1L;
 
        // Multiply x for n times
        for (int i = 0; i < n; i++) {
            pow = pow * x;
        }
 
        return pow;
    }
 
    // Driver code
    public static void main(String[] args)
    {
        int x = 2;
        int n = 3;
        System.out.println(power(x, n));
    }
};


Python




# Python3 program for the above approach
def power(x, n):
 
    # initialize result by 1
    pow = 1
 
    # Multiply x for n times
    for i in range(n):
        pow = pow * x
 
    return pow
 
 
# Driver code
if __name__ == '__main__':
 
    x = 2
    n = 3
 
       # Function call
    print(power(x, n))


C#




// C# program for the above approach
using System;
 
public class Gfg {
 
    // Naive iterative solution to calculate pow(x, n)
    static long power(int x, int n)
    {
        // Initialize result by 1
        long pow = 1L;
 
        // Multiply x for n times
        for (int i = 0; i < n; i++) {
            pow = pow * x;
        }
 
        return pow;
    }
 
    // Driver code
    public static void Main(String[] args)
    {
        int x = 2;
        int n = 3;
        Console.WriteLine(power(x, n));
    }
};
 
// This code contributed by Pushpesh Raj


Javascript




// Naive iterative solution to calculate pow(x, n)
function power( x, n)
{
    // Initialize result to 1
    let pow = 1;
 
    // Multiply x for n times
    for (let i = 0; i < n; i++) {
        pow = pow * x;
    }
 
    return pow;
}
 
// Driver code
 
    let x = 2;
    let n = 3;
 
    // Function call
    let result = power(x, n);
    console.log( result );
 
// This code is contributed by garg28harsh.


Output

8




Time Complexity: O(n)
Auxiliary Space: O(1)

pow(x, n) using recursion:

We can use the same approach as above but instead of an iterative loop, we can use recursion for the purpose.

C++




// C++ program for the above approach
#include <bits/stdc++.h>
using namespace std;
 
int power(int x, int n)
{
    // If x^0 return 1
    if (n == 0)
        return 1;
    // If we need to find of 0^y
    if (x == 0)
        return 0;
    // For all other cases
    return x * power(x, n - 1);
}
 
// Driver Code
int main()
{
    int x = 2;
    int n = 3;
 
    // Function call
    cout << (power(x, n));
}
 
// This code is contributed by Aditya Kumar (adityakumar129)


C




// C program for the above approach
#include <stdio.h>
 
int power(int x, int n)
{
    // If x^0 return 1
    if (n == 0)
        return 1;
 
    // If we need to find of 0^y
    if (x == 0)
        return 0;
    // For all other cases
    return x * power(x, n - 1);
}
 
// Driver Code
int main()
{
    int x = 2;
    int n = 3;
 
    // Function call
    printf("%d\n", power(x, n));
}
 
// This code is contributed by Aditya Kumar (adityakumar129)


Java




// Java program for the above approach
import java.io.*;
 
class GFG {
    public static int power(int x, int n)
    {
 
        // If x^0 return 1
        if (n == 0)
            return 1;
 
        // If we need to find of 0^y
        if (x == 0)
            return 0;
 
        // For all other cases
        return x * power(x, n - 1);
    }
 
    // Driver Code
    public static void main(String[] args)
    {
        int x = 2;
        int n = 3;
 
        // Function call
        System.out.println(power(x, n));
    }
}


C#




// C# program for the above approach
using System;
 
class GFG {
 
    public static int power(int x, int n)
    {
 
        // If x^0 return 1
        if (n == 0)
            return 1;
 
        // If we need to find of 0^y
        if (x == 0)
            return 0;
 
        // For all other cases
        return x * power(x, n - 1);
    }
 
    // Driver Code
    public static void Main(String[] args)
    {
        int x = 2;
        int n = 3;
 
        // Function call
        Console.WriteLine(power(x, n));
    }
}
 
// This code is contributed by Rajput-Ji


Javascript




<script>
 
// javascript program for the above approach
    function power(x , n) {
 
        // If x^0 return 1
        if (n == 0)
            return 1;
 
        if (x == 0)
            return 0;
 
        // For all other cases
        return x * power(x, n - 1);
    }
 
    // Driver Code
     
        var x = 2;
        var n = 3;
 
        document.write(power(x, n));
 
// This code is contributed by Rajput-Ji
 
</script>


Python3




# Python3 program for the above approach
def power(x, n):
 
    # If x^0 return 1
    if (n == 0):
        return 1
 
    # If we need to find of 0^y
    if (x == 0):
        return 0
 
    # For all other cases
    return x * power(x, n - 1)
 
 
# Driver Code
if __name__ == "__main__":
    x = 2
    n = 3
 
    # Function call
    print(power(x, n))
 
# This code is contributed by shivani.


Output

8



Time Complexity: O(n)
Auxiliary Space: O(n) n is the size of the recursion stack

Program to calculate pow(x, n) using Divide and Conqueror approach:

To solve the problem follow the below idea:

The problem can be recursively defined by:

  • power(x, n) = power(x, n / 2) * power(x, n / 2);        // if n is even
  • power(x, n) = x * power(x, n / 2) * power(x, n / 2);    // if n is odd

Below is the implementation of the above approach:

C++




// C++ program to calculate pow(x,n)
#include <bits/stdc++.h>
using namespace std;
class gfg {
 
    /* Function to calculate x raised to the power y */
public:
    int power(int x, unsigned int y)
    {
        if (y == 0)
            return 1;
        else if (y % 2 == 0)
            return power(x, y / 2) * power(x, y / 2);
        else
            return x * power(x, y / 2) * power(x, y / 2);
    }
};
 
/* Driver code */
int main()
{
    gfg g;
    int x = 2;
    unsigned int y = 3;
 
    // Function call
    cout << g.power(x, y);
    return 0;
}
 
// This code is contributed by SoM15242


C




// C program to calculate pow(x,n)
#include <stdio.h>
 
/* Function to calculate x raised to the power y */
int power(int x, unsigned int y)
{
    if (y == 0)
        return 1;
    else if (y % 2 == 0)
        return power(x, y / 2) * power(x, y / 2);
    else
        return x * power(x, y / 2) * power(x, y / 2);
}
 
/* Driver code */
int main()
{
    int x = 2;
    unsigned int y = 3;
 
    // Function call
    printf("%d", power(x, y));
    return 0;
}


Java




// Java program to calculate pow(x,n)
 
class GFG {
    /* Function to calculate x raised to the power y */
    static int power(int x, int y)
    {
        if (y == 0)
            return 1;
        else if (y % 2 == 0)
            return power(x, y / 2) * power(x, y / 2);
        else
            return x * power(x, y / 2) * power(x, y / 2);
    }
 
    // Driver code
    public static void main(String[] args)
    {
        int x = 2;
        int y = 3;
 
        // Function call
        System.out.printf("%d", power(x, y));
    }
}
 
// This code is contributed by Smitha Dinesh Semwal


Python




# Python3 program to calculate pow(x,n)
 
# Function to calculate x
# raised to the power y
 
 
def power(x, y):
 
    if (y == 0):
        return 1
    elif (int(y % 2) == 0):
        return (power(x, int(y / 2)) *
                power(x, int(y / 2)))
    else:
        return (x * power(x, int(y / 2)) *
                power(x, int(y / 2)))
 
 
# Driver Code
if __name__ == "__main__":
    x = 2
    y = 3
 
    # Function call
    print(power(x, y))
 
# This code is contributed by Smitha Dinesh Semwal.


C#




// C# program to calculate pow(x,n)
 
using System;
 
public class GFG {
 
    // Function to calculate x raised to the power y
    static int power(int x, int y)
    {
        if (y == 0)
            return 1;
        else if (y % 2 == 0)
            return power(x, y / 2) * power(x, y / 2);
        else
            return x * power(x, y / 2) * power(x, y / 2);
    }
 
    // Driver code
    public static void Main()
    {
        int x = 2;
        int y = 3;
 
        // Function call
        Console.Write(power(x, y));
    }
}
 
// This code is contributed by shiv_bhakt.


Javascript




<script>
// Javascript program to calculate pow(x,n)
 
// Function to calculate x
// raised to the power y
function power(x, y)
{
    if (y == 0)
        return 1;
    else if (y % 2 == 0)
        return power(x, parseInt(y / 2, 10)) *
            power(x, parseInt(y / 2, 10));
    else
        return x * power(x, parseInt(y / 2, 10)) *
                power(x, parseInt(y / 2, 10));
}
 
// Driver code
let x = 2;
let y = 3;
 
document.write(power(x, y));
 
// This code is contributed by mukesh07
 
</script>


PHP




<?php
// php program to calculate pow(x,n)
function power($x, $y)
{
    if ($y == 0)
        return 1;
    else if ($y % 2 == 0)
        return power($x, (int)$y / 2) *
            power($x, (int)$y / 2);
    else
        return $x * power($x, (int)$y / 2) *
                    power($x, (int)$y / 2);
}
 
// Driver Code
$x = 2;
$y = 3;
 
// Function call
echo power($x, $y);
     
// This code is contributed by ajit
?>


Output

8



Time Complexity: O(n)
Auxiliary Space: O(n)

An Optimized Divide and Conquer Solution:

To solve the problem follow the below idea:

There is a problem with the above solution, the same subproblem is computed twice for each recursive call. We can optimize the above function by computing the solution of the subproblem once only.

Below is the implementation of the above approach:

C++




/* Function to calculate x raised to the power y in
 * O(logn)*/
int power(int x, unsigned int y)
{
    int temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else
        return x * temp * temp;
}
 
// This code is contributed by Shubhamsingh10


C




/* Function to calculate x raised to the power y in
 * O(logn)*/
int power(int x, unsigned int y)
{
    int temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else
        return x * temp * temp;
}


Java




/* Function to calculate x raised to the power y in
 * O(logn)*/
static int power(int x, int y)
{
    int temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else
        return x * temp * temp;
}
 
// This code is contributed by divyeshrabadiya07.


C#




/* Function to calculate x raised to the power y in
 * O(logn)*/
static int power(int x, int y)
{
    int temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else
        return x * temp * temp;
}
 
// This code is contributed by divyesh072019.


Javascript




<script>
 
/* Function to calculate x raised to the power y in O(logn)*/
function power(x , y)
{
    var temp;
    if( y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp*temp;
    else
        return x*temp*temp;
}
 
// This code is contributed by todaysgaurav
 
</script>


Python3




# Function to calculate x raised to the power y in O(logn)
def power(x, y):
    temp = 0
    if(y == 0):
        return 1
    temp = power(x, int(y / 2))
    if (y % 2 == 0)
    return temp * temp
    else
    return x * temp * temp
 
# This code is contributed by avanitrachhadiya2155


Output

8
























Time Complexity: O(log n)
Auxiliary Space: O(log n), for recursive call stack

Extend the pow function to work for negative n and float x:

Below is the implementation of the above approach:

C




/* Extended version of power function that can work
 for float x and negative y*/
#include <stdio.h>
 
float power(float x, int y)
{
    float temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else {
        if (y > 0)
            return x * temp * temp;
        else
            return (temp * temp) / x;
    }
}
 
/* Driver code */
int main()
{
    float x = 2;
    int y = -3;
 
    // Function call
    printf("%f", power(x, y));
    return 0;
}


Java




/* Java code for extended version of power function
that can work for float x and negative y */
class GFG {
 
    static float power(float x, int y)
    {
        float temp;
        if (y == 0)
            return 1;
        temp = power(x, y / 2);
 
        if (y % 2 == 0)
            return temp * temp;
        else {
            if (y > 0)
                return x * temp * temp;
            else
                return (temp * temp) / x;
        }
    }
 
    /* Driver code */
    public static void main(String[] args)
    {
        float x = 2;
        int y = -3;
 
        // Function call
        System.out.printf("%f", power(x, y));
    }
}
 
// This code is contributed by  Smitha Dinesh Semwal.


C#




// C# code for extended version of power function
// that can work for float x and negative y
 
using System;
 
public class GFG {
 
    static float power(float x, int y)
    {
        float temp;
 
        if (y == 0)
            return 1;
        temp = power(x, y / 2);
 
        if (y % 2 == 0)
            return temp * temp;
        else {
            if (y > 0)
                return x * temp * temp;
            else
                return (temp * temp) / x;
        }
    }
 
    // Driver code
    public static void Main()
    {
        float x = 2;
        int y = -3;
 
        // Function call
        Console.Write(power(x, y));
    }
}
 
// This code is contributed by shiv_bhakt.


Javascript




<script>
 
// Javascript code for extended
// version of power function that
// can work for var x and negative y
function power(x, y)
{
    var temp;
     
    if (y == 0)
        return 1;
         
    temp = power(x, parseInt(y / 2));
 
    if (y % 2 == 0)
        return temp * temp;
    else
    {
        if (y > 0)
            return x * temp * temp;
        else
            return (temp * temp) / x;
    }
}
 
// Driver code
var x = 2;
var y = -3;
 
document.write( power(x, y).toFixed(6));
 
// This code is contributed by aashish1995
 
</script>


PHP




<?php
// Extended version of power
// function that can work
// for float x and negative y
 
function power($x, $y)
{
    $temp;
    if( $y == 0)
    return 1;
    $temp = power($x, $y / 2);    
    if ($y % 2 == 0)
        return $temp * $temp;
    else
    {
        if($y > 0)
            return $x *
                   $temp * $temp;
        else
            return ($temp *
                    $temp) / $x;
    }
}
 
// Driver Code
$x = 2;
$y = -3;
 
// Function call
echo power($x, $y);
 
// This code is contributed by ajit
?>


C++




/* Extended version of power function
that can work for float x and negative y*/
#include <bits/stdc++.h>
using namespace std;
 
float power(float x, int y)
{
    float temp;
    if (y == 0)
        return 1;
    temp = power(x, y / 2);
    if (y % 2 == 0)
        return temp * temp;
    else {
        if (y > 0)
            return x * temp * temp;
        else
            return (temp * temp) / x;
    }
}
 
// Driver Code
int main()
{
    float x = 2;
    int y = -3;
 
    // Function call
    cout << power(x, y);
    return 0;
}
 
// This is code is contributed
// by rathbhupendra


Python3




# Python3 code for extended version
# of power function that can work
# for float x and negative y
 
 
def power(x, y):
 
    if(y == 0):
        return 1
    temp = power(x, int(y / 2))
 
    if (y % 2 == 0):
        return temp * temp
    else:
        if(y > 0):
            return x * temp * temp
        else:
            return (temp * temp) / x
 
 
# Driver Code
if __name__ == "__main__":
    x, y = 2, -3
 
    # Function call
    print('%.6f' % (power(x, y)))
 
# This code is contributed by Smitha Dinesh Semwal.


Rust




/*
Below funtion implements pow functionality in rust by gaurav nv
*/
fn powg(x:i32,y:i32) -> f32{
    if y == 0 {
        return 1 as f32;
    } else if y == 1{
        return x as f32;
    }
 
    let temp:f32 = powg(x, y/2);
 
    if y>0 {
        if y%2 == 0 {
            return temp * temp;
        } else {
            return temp * temp * (x as f32);
        }
    } else {
        if y%2 == 0 {
            return temp * temp;
        } else {
            return temp * temp / (x as f32);
        }       
    }
}
fn main() {
    println!("{}",powg(2, -3));
}


Output

0.125



Time Complexity: O(log |n|)
Auxiliary Space: O(log |n|) , for recursive call stack

 

Program to calculate pow(x,n) using inbuilt power function:

To solve the problem follow the below idea:

We can use inbuilt power function pow(x, n) to calculate xn

Below is the implementation of the above approach:

C++




// C++ program for the above approach
#include <bits/stdc++.h>
using namespace std;
 
int power(int x, int n)
{
 
    // return type of pow()
    // function is double
    return (int)pow(x, n);
}
 
// Driver Code
int main()
{
    int x = 2;
    int n = 3;
 
    // Function call
    cout << (power(x, n));
}
 
// This code is contributed by hemantraj712.


Java




// Java program for the above approach
import java.io.*;
 
class GFG {
    public static int power(int x, int n)
    {
 
        // Math.pow() is a function that
        // return floating number
        return (int)Math.pow(x, n);
    }
 
    // Driver Code
    public static void main(String[] args)
    {
        int x = 2;
        int n = 3;
 
        // Function call
        System.out.println(power(x, n));
    }
}


C#




// C# program for the above approach
 
using System;
 
public class GFG {
 
    public static int power(int x, int n)
    {
 
        // Math.pow() is a function that
        // return floating number
        return (int)Math.Pow(x, n);
    }
 
    // Driver code
    static public void Main()
    {
        int x = 2;
        int n = 3;
 
        // Function call
        Console.WriteLine(power(x, n));
    }
}


Javascript




<script>
 
// Javascript program for the above approach
 
    function power( x, n)
    {
         
        // Math.pow() is a function that
        // return floating number
        return parseInt(Math.pow(x, n));
    }
 
    // Driver Code
     
        let x = 2;
        let n = 3;
 
        document.write(power(x, n));
         
// This code is contributed by sravan kumar
 
</script>


Python3




# Python3 program for the above approach
def power(x, n):
 
    # Return type of pow()
    # function is double
    return pow(x, n)
 
 
# Driver Code
if __name__ == "__main__":
    x = 2
    n = 3
 
    # Function call
    print(power(x, n))
 
# This code is contributed by susmitakundugoaldanga


Output

8



Time Complexity: O(log n)
Auxiliary Space: O(1), for recursive call stack

Program to calculate pow(x,n) using Binary operators:

To solve the problem follow the below idea:

Some important concepts related to this approach:

  • Every number can be written as the sum of powers of 2
  • We can traverse through all the bits of a number from LSB to MSB in O(log n) time.

Illustration:

 3^10 = 3^8 * 3^2. (10 in binary can be represented as 1010, where from the left side the first 1 represents 3^2 and the second 1 represents 3^8)

3^19 = 3^16 * 3^2 * 3. (19 in binary can be represented as 10011, where from the left side the first 1 represents 3^1 and second 1 represents 3^2 and the third one represents 3^16)

Below is the implementation of the above approach.

C++




// C++ program for the above approach
#include <iostream>
using namespace std;
 
int power(int x, int n)
{
    int result = 1;
    while (n > 0) {
        if (n & 1 == 1) // y is odd
        {
            result = result * x;
        }
        x = x * x;
        n = n >> 1; // y=y/2;
    }
    return result;
}
 
// Driver Code
int main()
{
    int x = 2;
    int n = 3;
 
    // Function call
    cout << (power(x, n));
    return 0;
}
 
// This code is contributed bySuruchi Kumari


Java




// Java program for above approach
 
import java.io.*;
 
class GFG {
 
    static int power(int x, int n)
    {
        int result = 1;
        while (n > 0) {
            if (n % 2 != 0) // y is odd
            {
                result = result * x;
            }
            x = x * x;
            n = n >> 1; // y=y/2;
        }
        return result;
    }
 
    // Driver Code
    public static void main(String[] args)
    {
        int x = 2;
        int n = 3;
 
        // Function call
        System.out.println(power(x, n));
    }
}
 
// This code is contributed by Suruchi Kumari


C#




// C# program for above approach
using System;
 
class GFG {
 
    static int power(int x, int n)
    {
        int result = 1;
 
        while (n > 0) {
 
            // y is even
            if (n % 2 == 0) {
                x = x * x;
                n = n / 2;
            }
 
            // y isn't even
            else {
                result = result * x;
                n = n - 1;
            }
        }
        return result;
    }
 
    // Driver Code
    public static void Main(String[] args)
    {
        int x = 2;
        int y = 3;
 
        // Function call
        Console.Write(power(x, y));
    }
}
 
// This code is contributed by shivanisinghss2110


Javascript




<script>
// Javascript program for the above approach
 
function power(x,y)
{
    let result = 1;
    while (y > 0) {
        if (y % 2 == 0) // y is even
        {
            x = x * x;
            y = Math.floor(y / 2);
        }
        else // y isn't even
        {
            result = result * x;
            y = y - 1;
        }
    }
    return result;
}
 
// Driver Code
let x = 2;
let y = 3;
document.write(power(x, y))
 
// This code is contributed by rag2127
</script>


Python3




# Python3 program for the above approach
def power(x, n):
 
    result = 1
    while (n > 0):
        if (n % 2 == 0):
            # y is even
 
            x = x * x
            n = n / 2
 
        else:
            # y isn't even
 
            result = result * x
            n = n - 1
 
    return result
 
 
# Driver Code
if __name__ == "__main__":
    x = 2
    n = 3
 
    # Function call
    print((power(x, n)))
 
# This code is contributed by shivanisinghss2110


Output

8



Time Complexity: O(log n)
Auxiliary Space: O(1)

Program to calculate pow(x,n) using Python ** operator:

To solve the problem follow the below idea:

In Python language, we can easily find power of a number using ** operator.

Below is the implementation of the above approach.

C++




#include <bits/stdc++.h>
using namespace std;
 
// Function to calculate power
double calculatePower(double x, int n) {
    // Calculate the power using the pow function from cmath library
    return pow(x, n);
}
 
// Main function
int main() {
    // Input values
    double x = 2;
    int n = 3;
 
    // Function call
    double result = calculatePower(x, n);
 
    // Output the result
    cout << result << endl;
 
    return 0;
}


Java




public class Main {
 
    // Function to calculate power
    public static double calculatePower(double x, int n) {
        // Calculate the power using the exponentiation operator (**)
        return Math.pow(x, n);
    }
 
    // Main function
    public static void main(String[] args) {
        // Input values
        double x = 2;
        int n = 3;
 
        // Function call
        double result = calculatePower(x, n);
 
        // Output the result
        System.out.println(result);
    }
}


C#




using System;
 
class Program
{
    // Function to calculate power
    static double CalculatePower(double x, int n)
    {
        // Calculate the power using the Math.Pow method
        return Math.Pow(x, n);
    }
 
    // Main function
    static void Main(string[] args)
    {
        // Input values
        double x = 2;
        int n = 3;
 
        // Function call
        double result = CalculatePower(x, n);
 
        // Output the result
        Console.WriteLine(result);
    }
}
// This code is contributed by Utkarsh


Javascript




function GFG(x, n) {
    // Calculate the power
    return x ** n;
}
// Main function
function main() {
    // Input values
    const x = 2;
    const n = 3;
    // Function call
    const result = GFG(x, n);
    // Output the result
    console.log(result);
}
// Execute the main function
main();


Python3




# Python program to illustrate use of ** operator
# to calculate power of a number
def power(x, n):
 
    # Calculate the power
    return x**n
 
 
# Driver Code
if __name__ == "__main__":
    x = 2
    n = 3
 
    # Function call
    print(power(x, n))
 
# This code is contributed by Susobhan Akhuli


Output

8.0




Time Complexity: O(log n)
Auxiliary Space: O(1)

Program to calculate pow(x,n) using Python numpy module:

We can install NumPy by running the following command:

pip install numpy

To solve the problem follow the below idea:

In Python language, we can easily find power of a number using the NumPy library’s “power” function. This function allows you to calculate the power of a number using a single line of code.

Below is the implementation of the above approach.

C++




#include <iostream>
#include <cmath>
using namespace std;
 
int main() {
    int N = 2;
    int X = 3;
    int result = pow(N, X);
    cout << result << endl;
    return 0;
}


Python3




import numpy as np
 
N = 2
X = 3
result = np.power(N, X)
print(result) # Output: 8
 
#This code is contributed by Susobhan Akhuli


Output

8

Program to calculate pow(x,n) using math.log2() and ** operator:

Here, we can use the math.log2() in combination with the operator “**” to calculate the power of a number.

C++




#include <iostream>
#include <cmath>
using namespace std;
 
int calculatePower(int a, int n) {
    return round(pow(2, (log2(a) * n)));
}
 
int main() {
    int a = 2;
    int n = 3;
    cout << calculatePower(a, n) << endl;
    return 0;
}


Java




import java.util.*;
 
public class Main {
    // Function to calculate a^n using log2 and pow methods
    public static int calculatePower(int a, int n) {
        // Calculate a^n using the log2 and pow methods
        // The result is rounded to the nearest integer
        return Math.round((int) Math.pow(2, (Math.log(a) / Math.log(2)) * n));
    }
 
    public static void main(String[] args) {
        int a = 2;
        int n = 3;
        System.out.println(calculatePower(a, n));
    }
}


C#




using System;
 
public class MainClass
{
    // Function to calculate a^n using log2 and pow methods
    public static int CalculatePower(int a, int n)
    {
        // Calculate a^n using the log2 and pow methods
        // The result is rounded to the nearest integer
        return (int)Math.Round(Math.Pow(2, (Math.Log(a) / Math.Log(2)) * n));
    }
 
    public static void Main(string[] args)
    {
        int a = 2;
        int n = 3;
        Console.WriteLine(CalculatePower(a, n));
    }
}


Javascript




// Function to calculate a^n using Math.pow
function calculatePower(a, n) {
    // Calculate a^n using Math.pow
    return Math.round(Math.pow(a, n));
}
 
// Test the function
var a = 2;
var n = 3;
console.log(calculatePower(a, n));


Python3




import math
 
def calculatePower(a, n):
    return round(2 ** (math.log2(a) * n))
 
# Driver code
if __name__ == '__main__':
    a = 2
    n = 3
    print(calculatePower(a, n)) # Output: a^n
 
# This code is contributed by Susobhan Akhuli


Output

8




Program to calculate pow(x,n) using math.exp() function:

In math library, the math.exp() function in Python is used to calculate the value of the mathematical constant e (2.71828…) raised to a given power. It takes a single argument, which is the exponent to which the constant e should be raised, and returns the result as a float. Now, if we use combination of math.log() and math.exp() function, then we can find power of any number.

C++




#include <cmath>
#include <iostream>
using namespace std;
 
// Function to calculate the power of a number
int calculatePower(int x, int n)
{
    // Calculate the power using the exp and log functions
    // from the cmath library
    double result = exp(log(x) * n);
 
    // Round the result to the nearest integer
    result = round(result);
 
    return static_cast<int>(result);
}
 
int main()
{
    int x = 2;
    int n = 3;
 
    // Function call
    cout << "Result: " << calculatePower(x, n) << endl;
 
    return 0;
}


Java




import java.lang.Math;
 
public class Main {
    // Function to calculate the power of a number
    static int calculatePower(int x, int n) {
        // Calculate the power using the exp and log functions
        // from the Math library
        double result = Math.exp(Math.log(x) * n);
 
        // Round the result to the nearest integer
        result = Math.round(result);
 
        return (int) result;
    }
 
    public static void main(String[] args) {
        int x = 2;
        int n = 3;
 
        // Function call
        System.out.println("Result: " + calculatePower(x, n));
    }
}


C#




using System;
 
class Program {
    // Function to calculate the power of a number
    static int CalculatePower(int x, int n)
    {
        // Calculate the power using the Math.Pow function
        double result = Math.Pow(x, n);
 
        // Round the result to the nearest integer
        result = Math.Round(result);
 
        return (int)result;
    }
 
    static void Main()
    {
        int x = 2;
        int n = 3;
 
        // Function call
        Console.WriteLine("Result: "
                          + CalculatePower(x, n));
    }
}


Javascript




function GFG(x, n) {
    // Using the mathematical property to
    // calculate the power
    const ans = Math.round(Math.exp(Math.log(x) * n));
    return ans;
}
// Driver Code
const x = 2;
const n = 3;
console.log(GFG(x, n));


Python3




import math
 
def calculatePower(x, n):
      ans = math.exp(math.log(x) * n)
      ans = round(ans)
      return ans
 
# Driver code
if __name__ == '__main__':
    x = 2
    n = 3
    print(calculatePower(x, n)) # Output: x^n
 
# This code is contributed by Susobhan Akhuli


Output

Result: 8




Complexity Analysis:

Time Complexity: O(1), as both math.exp() and math.log() functions run on O(1) time complexity.
Auxiliary Space: O(1), as no extra space is used.

Related Articles:
Write an iterative O(Log y) function for pow(x, y) 
Modular Exponentiation (Power in Modular Arithmetic)

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Last Updated : 08 Mar, 2024
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