Saturday, November 16, 2024
Google search engine
HomeData Modelling & AISwap bits in a given number

Swap bits in a given number

Given a number x and two positions (from the right side) in the binary representation of x, write a function that swaps n bits at the given two positions and returns the result. It is also given that the two sets of bits do not overlap.

Recommended Practice

Method 1 
Let p1 and p2 be the two given positions.

Example 1 

Input:
x = 47 (00101111)
p1 = 1 (Start from the second bit from the right side)
p2 = 5 (Start from the 6th bit from the right side)
n = 3 (No of bits to be swapped)
Output:
227 (11100011)
The 3 bits starting from the second bit (from the right side) are 
swapped with 3 bits starting from 6th position (from the right side)

Example 2 

Input:
x = 28 (11100)
p1 = 0 (Start from first bit from right side)
p2 = 3 (Start from 4th bit from right side)
n = 2 (No of bits to be swapped)
Output:
7 (00111)
The 2 bits starting from 0th position (from right side) are
swapped with 2 bits starting from 4th position (from right side)

Solution 
We need to swap two sets of bits. XOR can be used in a similar way as it is used to swap 2 numbers. Following is the algorithm. 

1) Move all bits of the first set to the rightmost side
   set1 =  (x >> p1) & ((1U << n) - 1)
Here the expression (1U << n) - 1 gives a number that 
contains last n bits set and other bits as 0. We do & 
with this expression so that bits other than the last 
n bits become 0.
2) Move all bits of second set to rightmost side
   set2 =  (x >> p2) & ((1U << n) - 1)
3) XOR the two sets of bits
   xor = (set1 ^ set2) 
4) Put the xor bits back to their original positions. 
   xor = (xor << p1) | (xor << p2)
5) Finally, XOR the xor with original number so 
   that the two sets are swapped.
   result = x ^ xor

Implementation: 

C++




// C++ Program to swap bits
// in a given number
#include <bits/stdc++.h>
using namespace std;
 
int swapBits(unsigned int x, unsigned int p1,
             unsigned int p2, unsigned int n)
{
    /* Move all bits of first set to rightmost side */
    unsigned int set1 = (x >> p1) & ((1U << n) - 1);
 
    /* Move all bits of second set to rightmost side */
    unsigned int set2 = (x >> p2) & ((1U << n) - 1);
 
    /* Xor the two sets */
    unsigned int Xor = (set1 ^ set2);
 
    /* Put the Xor bits back to their original positions */
    Xor = (Xor << p1) | (Xor << p2);
 
    /* Xor the 'Xor' with the original number so that the
    two sets are swapped */
    unsigned int result = x ^ Xor;
 
    return result;
}
 
/* Driver code*/
int main()
{
    int res = swapBits(28, 0, 3, 2);
    cout << "Result = " << res;
    return 0;
}
 
// This code is contributed by rathbhupendra


C




// C Program to swap bits
// in a given number
#include <stdio.h>
 
int swapBits(unsigned int x, unsigned int p1, unsigned int p2, unsigned int n)
{
    /* Move all bits of first set to rightmost side */
    unsigned int set1 = (x >> p1) & ((1U << n) - 1);
 
    /* Move all bits of second set to rightmost side */
    unsigned int set2 = (x >> p2) & ((1U << n) - 1);
 
    /* XOR the two sets */
    unsigned int xor = (set1 ^ set2);
 
    /* Put the xor bits back to their original positions */
    xor = (xor << p1) | (xor << p2);
 
    /* XOR the 'xor' with the original number so that the
       two sets are swapped */
    unsigned int result = x ^ xor;
 
    return result;
}
 
/* Driver program to test above function*/
int main()
{
    int res = swapBits(28, 0, 3, 2);
    printf("\nResult = %d ", res);
    return 0;
}


Java




// Java Program to swap bits
// in a given number
 
class GFG {
 
    static int swapBits(int x, int p1, int p2, int n)
    {
        // Move all bits of first set
        // to rightmost side
        int set1 = (x >> p1) & ((1 << n) - 1);
 
        // Move all bits of second set
        // to rightmost side
        int set2 = (x >> p2) & ((1 << n) - 1);
 
        // XOR the two sets
        int xor = (set1 ^ set2);
 
        // Put the xor bits back to
        // their original positions
        xor = (xor << p1) | (xor << p2);
 
        // XOR the 'xor' with the original number
        // so that the  two sets are swapped
        int result = x ^ xor;
 
        return result;
    }
 
    // Driver program
    public static void main(String[] args)
    {
        int res = swapBits(28, 0, 3, 2);
        System.out.println("Result = " + res);
    }
}
 
// This code is contributed by prerna saini.


Python3




# Python program to
# swap bits in a given number
 
def swapBits(x, p1, p2, n):
 
    # Move all bits of first
    # set to rightmost side
    set1 =  (x >> p1) & ((1<< n) - 1)
  
    # Move all bits of second
    # set to rightmost side
    set2 =  (x >> p2) & ((1 << n) - 1)
  
    # XOR the two sets
    xor = (set1 ^ set2)
  
    # Put the xor bits back
    # to their original positions
    xor = (xor << p1) | (xor << p2)
  
      # XOR the 'xor' with the
      # original number so that the
      # two sets are swapped
    result = x ^ xor
  
    return result
     
# Driver code
 
res = swapBits(28, 0, 3, 2)
print("Result =", res)
 
# This code is contributed
# by Anant Agarwal.


C#




// C# Program to swap bits
// in a given number
using System;
 
class GFG {
 
    static int swapBits(int x, int p1, int p2, int n)
    {
        // Move all bits of first
        // set to rightmost side
        int set1 = (x >> p1) & ((1 << n) - 1);
 
        // Move all bits of second set
        // set to rightmost side
        int set2 = (x >> p2) & ((1 << n) - 1);
 
        // XOR the two sets
        int xor = (set1 ^ set2);
 
        // Put the xor bits back to
        // their original positions
        xor = (xor << p1) | (xor << p2);
 
        // XOR the 'xor' with the original number
        // so that the two sets are swapped
        int result = x ^ xor;
 
        return result;
    }
 
    // Driver program
    public static void Main()
    {
        int res = swapBits(28, 0, 3, 2);
        Console.WriteLine("Result = " + res);
    }
}
 
// This code is contributed by vt_m.


PHP




<?php
// PHP Program to swap bits
// in a given number
 
// function returns
// the swapped bits
function swapBits($x, $p1, $p2, $n)
{
     
    // Move all bits of first
    // set to rightmost side
    $set1 = ($x >> $p1) &
            ((1 << $n) - 1);
 
    // Move all bits of second
    // set to rightmost side
    $set2 = ($x >> $p2) &
            ((1 << $n) - 1);
 
    // XOR the two sets
    $xor = ($set1 ^ $set2);
 
    // Put the xor bits back to
    // their original positions
    $xor = ($xor << $p1) |
           ($xor << $p2);
 
    // XOR the 'xor' with the
    // original number so that
    // the two sets are swapped
    $result = $x ^ $xor;
 
    return $result;
}
 
    // Driver Code
    $res = swapBits(28, 0, 3, 2);
    echo "\nResult = ", $res;
     
// This code is contributed by anuj_67.
?>


Javascript




<script>
 
// Javascript Program to swap bits
// in a given number
 
 
    function  swapBits(x, p1, p2, n)
    {
        // Move all bits of first set
        // to rightmost side
        let set1 = (x >> p1) & ((1 << n) - 1);
 
        // Move all bits of second set
        // to rightmost side
        let set2 = (x >> p2) & ((1 << n) - 1);
 
        // XOR the two sets
        let xor = (set1 ^ set2);
 
        // Put the xor bits back to
        // their original positions
        xor = (xor << p1) | (xor << p2);
 
        // XOR the 'xor' with the original number
        // so that the  two sets are swapped
        let result = x ^ xor;
 
        return result;
    }
 
// Driver Code
 
    let res = swapBits(28, 0, 3, 2);
    document.write("Result = " + res);
 
</script>


Output

Result = 7

Time Complexity: O(1), as we are using constant-time operations.

Auxiliary Space: O(1), as we are not using any extra space.

Following is a shorter implementation of the same logic 

C++




// C++ program of the above approach
#include <bits/stdc++.h>
using namespace std;
 
int swapBits(int x, int p1, int p2, int n)
{
    /* xor contains xor of two sets */
    int xor = ((x >> p1) ^ (x >> p2)) & ((1U << n) - 1);
 
    /* To swap two sets, we need to again XOR the xor with
     * original sets */
    return x ^ ((xor << p1) | (xor << p2));
}
 
// This code is contributed by splevel62.


C




int swapBits(unsigned int x, unsigned int p1, unsigned int p2, unsigned int n)
{
    /* xor contains xor of two sets */
    unsigned int xor = ((x >> p1) ^ (x >> p2)) & ((1U << n) - 1);
 
    /* To swap two sets, we need to again XOR the xor with original sets */
    return x ^ ( (xor << p1) | (xor << p2));
}


Java




static int swapBits(int x, int p1, int p2, int n)
{
    /* xor contains xor of two sets */
    int xor = ((x >> p1) ^ (x >> p2)) & ((1U << n) - 1);
 
    /* To swap two sets, we need to again XOR the xor with
     * original sets */
    return x ^ ((xor << p1) | (xor << p2));
}
 
// This code is contributed by subhammahato348.


Python3




# Python code to implement the approach
def swapBits(x, p1, p2, n) :
     
    # xor contains xor of two sets
    xor = (((x >> p1) ^ (x >> p2)) & ((1 << n) - 1))
  
    # To swap two sets, we need to again XOR the xor with original sets
    return x ^ ( (xor << p1) | (xor << p2))
   
  # This code is contributed by sanjoy_62.


C#




static int swapBits(int x, int p1, int p2, int n)
{
    /* xor contains xor of two sets */
    int xor = ((x >> p1) ^ (x >> p2)) & ((1U << n) - 1);
 
    /* To swap two sets, we need to again XOR the xor with
     * original sets */
    return x ^ ((xor << p1) | (xor << p2));
}
 
// This code is contributed by subhammahato348.


Javascript




<script>
    // JavaScript code for the above approach
function swapBits(x, p1, p2, n)
{
    /* xor contains xor of two sets */
    let xor = ((x >> p1) ^ (x >> p2)) & ((1 << n) - 1);
 
    /* To swap two sets, we need to again XOR the xor with
     * original sets */
    return x ^ ((xor << p1) | (xor << p2));
}
 
// This code is contributed by avijitmondal1998.
</script>


Time Complexity: O(1), as we are using constant-time operations.

Auxiliary Space: O(1), as we are not using any extra space.

Method 2 – 
This solution focuses on calculating the values of bits to be swapped using AND gate. Then we can set/unset those bits based on whether the bits are to be swapped. For the number of bits to be swapped (n) – 

  • Calculate shift1 = The value after setting bit at p1 position to 1
  • Calculate shift2 = The value after setting bit at p2 position to 1
  • value1 = Number to check if num at position p1 is set or not.
  • value2 = Number to check if num at position p2 is set or not.
  • If value1 and value2 are different is when we have to swap the bits.

Example: 

[28 0 3 2] num=28 (11100) p1=0 p2=3 n=2
   Given = 11100
   Required output = 00111 i.e. (00)1(11) msb 2 bits replaced with lsb 2 bits

n=2
  p1=0,  p2=3
  shift1= 1,  shift2= 1000
  value1= 0,  value2= 1000
 After swap
  num= 10101

n=3
  p1=1,  p2=4
  shift1= 10,  shift2= 10000
  value1= 0,  value2= 10000
 After swap
  num= 00111

Implementation 

C++




#include <iostream>
using namespace std;
 
int swapBits(unsigned int num, unsigned int p1,
             unsigned int p2, unsigned int n)
{
    int shift1, shift2, value1, value2;
    while (n--) {
        // Setting bit at p1 position to 1
        shift1 = 1 << p1;
        // Setting bit at p2 position to 1
        shift2 = 1 << p2;
 
        // value1 and value2 will have 0 if num
        // at the respective positions - p1 and p2 is 0.
        value1 = ((num & shift1));
        value2 = ((num & shift2));
 
        // check if value1 and value2 are different
        // i.e. at one position bit is set and other it is not
        if ((!value1 && value2) || (!value2 && value1)) {
            // if bit at p1 position is set
            if (value1) {
                // unset bit at p1 position
                num = num & (~shift1);
                // set bit at p2 position
                num = num | shift2;
            }
            // if bit at p2 position is set
            else {
                // set bit at p2 position
                num = num & (~shift2);
                // unset bit at p2 position
                num = num | shift1;
            }
        }
        p1++;
        p2++;
    }
    // return final result
    return num;
}
 
/* Driver code*/
int main()
{
    int res = swapBits(28, 0, 3, 2);
    cout << "Result = " << res;
    return 0;
}


Java




class GFG
{
    static int swapBits(int num, int p1, int p2, int n)
    {
        int shift1, shift2, value1, value2;
        while (n-- > 0)
        {
           
            // Setting bit at p1 position to 1
            shift1 = 1 << p1;
           
            // Setting bit at p2 position to 1
            shift2 = 1 << p2;
       
            // value1 and value2 will have 0 if num
            // at the respective positions - p1 and p2 is 0.
            value1 = ((num & shift1));
            value2 = ((num & shift2));
       
            // check if value1 and value2 are different
            // i.e. at one position bit is set and other it is not
            if ((value1 == 0 && value2 != 0) ||
                (value2 == 0 && value1 != 0))
            {
               
                // if bit at p1 position is set
                if (value1 != 0)
                {
                   
                    // unset bit at p1 position
                    num = num & (~shift1);
                   
                    // set bit at p2 position
                    num = num | shift2;
                }
               
                // if bit at p2 position is set
                else
                {
                   
                    // set bit at p2 position
                    num = num & (~shift2);
                   
                    // unset bit at p2 position
                    num = num | shift1;
                }
            }
            p1++;
            p2++;
        }
       
        // return final result
        return num;
    }
   
  // Driver code
  public static void main(String[] args)
  {
    int res = swapBits(28, 0, 3, 2);
    System.out.println("Result = " + res);
  }
}
 
// This code is contributed by divyeshrabadiya07


Python3




def swapBits(num, p1, p2, n):
    shift1 = 0
    shift2 = 0
    value1 = 0
    value2 = 0
 
    while(n > 0):
       
        # Setting bit at p1 position to 1
        shift1 = 1 << p1
 
        # Setting bit at p2 position to 1
        shift2 = 1 << p2
 
        # value1 and value2 will have 0 if num
        # at the respective positions - p1 and p2 is 0.
        value1 = ((num & shift1))
        value2 = ((num & shift2))
 
        # check if value1 and value2 are different
        # i.e. at one position bit is set and other it is not
        if((value1 == 0 and value2 != 0) or (value2 == 0 and value1 != 0)):
             
            # if bit at p1 position is set
            if(value1 != 0):
 
                # unset bit at p1 position
                num = num & (~shift1)
 
                # set bit at p2 position
                num = num | shift2
 
            # if bit at p2 position is set
            else:
 
                # set bit at p2 position
                num = num & (~shift2)
 
                # unset bit at p2 position
                num = num | shift1
        p1 += 1
        p2 += 1
        n -= 1
 
    # return final result
    return num
 
# Driver code
res = swapBits(28, 0, 3, 2)
print("Result =", res)
 
# This code is contributed by avanitrachhadiya2155


C#




using System;
class GFG
{
     
  static int swapBits(int num, int p1,
                      int p2, int n)
  {
    int shift1, shift2, value1, value2;
    while (n-- > 0)
    {
 
      // Setting bit at p1 position to 1
      shift1 = 1 << p1;
 
      // Setting bit at p2 position to 1
      shift2 = 1 << p2;
 
      // value1 and value2 will have 0 if num
      // at the respective positions - p1 and p2 is 0.
      value1 = ((num & shift1));
      value2 = ((num & shift2));
 
      // check if value1 and value2 are different
      // i.e. at one position bit is set and other it is not
      if ((value1 == 0 && value2 != 0) || (value2 == 0 && value1 != 0))
      {
 
        // if bit at p1 position is set
        if (value1 != 0)
        {
 
          // unset bit at p1 position
          num = num & (~shift1);
 
          // set bit at p2 position
          num = num | shift2;
        }
 
        // if bit at p2 position is set
        else
        {
 
          // set bit at p2 position
          num = num & (~shift2);
 
          // unset bit at p2 position
          num = num | shift1;
        }
      }
      p1++;
      p2++;
    }
 
    // return final result
    return num;
  }
 
  // Driver code
  static void Main()
  {
    int res = swapBits(28, 0, 3, 2);
    Console.WriteLine("Result = " + res);
  }
}
 
// This code is contributed by divyesh072019


Javascript




<script>
 
function swapBits(num, p1, p2, n)
{
    let shift1, shift2, value1, value2;
     
    while (n-- > 0)
    {
     
        // Setting bit at p1 position to 1
        shift1 = 1 << p1;
         
        // Setting bit at p2 position to 1
        shift2 = 1 << p2;
         
        // value1 and value2 will have 0 if num
        // at the respective positions - p1 and p2 is 0.
        value1 = ((num & shift1));
        value2 = ((num & shift2));
         
        // Check if value1 and value2 are different
        // i.e. at one position bit is set and
        // other it is not
        if ((value1 == 0 && value2 != 0) ||
            (value2 == 0 && value1 != 0))
        {
         
            // If bit at p1 position is set
            if (value1 != 0)
            {
             
                // Unset bit at p1 position
                num = num & (~shift1);
                 
                // Set bit at p2 position
                num = num | shift2;
            }
                 
            // If bit at p2 position is set
            else
            {
             
                // Set bit at p2 position
                num = num & (~shift2);
                 
                // Unset bit at p2 position
                num = num | shift1;
            }
        }
        p1++;
        p2++;
    }
     
    // Return final result
    return num;
}
 
// Driver code
let res = swapBits(28, 0, 3, 2);
 
document.write("Result = " + res);
 
// This code is contributed by suresh07
     
</script>


Output

Result = 7

Time Complexity: O(N), as we are using a loop to traverse N times. Where N is the number of bits to be swapped.

Auxiliary Space: O(1), as we are not using any extra space.
References: 
Swapping individual bits with XOR 
Please write comments if you find anything incorrect, or if you want to share more information about the topic discussed above.
 

Feeling lost in the world of random DSA topics, wasting time without progress? It’s time for a change! Join our DSA course, where we’ll guide you on an exciting journey to master DSA efficiently and on schedule.
Ready to dive in? Explore our Free Demo Content and join our DSA course, trusted by over 100,000 neveropen!

RELATED ARTICLES

Most Popular

Recent Comments