Given two integer numbers x and y. Compare and print which one of them has more leading zeros using Bitwise operation. If both the no. have the same no. of leading zeros, print “Equal”.
Note:- A leading zero is any 0 digit that comes before the first nonzero digit in the binary notation of the number.
Examples:
Input : 10, 16
Output :10
Explanation: If we represent the no.s using 8 bit only then
Binary(10) = 00001010
Binary(16) = 00010000
Clearly, 10 has 4 leading zeros and 16 has 3 leading zeros
Input : 10, 12
Output : Equal
Binary(10) = 00001010
Binary(12) = 00001100
Both have equal no. of leading zeros.
Solution 1: The Naive approach is to first find the binary representation of the numbers and then count the no. of leading zeros.
Solution 2: Find largest power of twos smaller than given numbers, and compare these powers of twos to decide answer.
Solution 3: An efficient approach is to bitwise XOR and AND operators.
Case 1: If both have same no. of leading zeros then (x^y) <= (x & y) because same number of leading 0s would cause a 1 at higher position in x & y.
Case 2 : If we do negation of y and do bitwise AND with x, we get a one at higher position than in y when y has more number of leading 0s.
Case 3: Else x has more leading zeros
C++
#include <bits/stdc++.h>
using namespace std;
void LeadingZeros( int x, int y)
{
if ((x ^ y) <= (x & y))
cout << "\nEqual" ;
else if ((x & (~y)) > y)
cout << y;
else
cout << x;
}
int main()
{
int x = 10, y = 16;
LeadingZeros(x, y);
return 0;
}
|
Java
class GFG
{
static void LeadingZeros( int x, int y)
{
if ((x ^ y) <= (x & y))
System.out.print( "\nEqual" );
else if ((x & (~y)) > y)
System.out.print(y);
else
System.out.print(x);
}
public static void main (String[] args)
{
int x = 10 , y = 16 ;
LeadingZeros(x, y);
}
}
|
Python3
def LeadingZeros(x, y):
if ((x ^ y) < = (x & y)):
print ( "Equal" )
elif ((x & (~y)) > y) :
print (y)
else :
print (x)
if __name__ = = '__main__' :
x = 10
y = 16
LeadingZeros(x, y)
|
C#
using System;
class GFG
{
static void LeadingZeros( int x, int y)
{
if ((x ^ y) <= (x & y))
Console.WriteLine( "\nEqual" );
else if ((x & (~y)) > y)
Console.WriteLine(y);
else
Console.WriteLine(x);
}
static public void Main ()
{
int x = 10, y = 16;
LeadingZeros(x, y);
}
}
|
Javascript
<script>
function LeadingZeros(x, y)
{
if ((x ^ y) <= (x & y))
document.write( "<br>Equal" );
else if ((x & (~y)) > y)
document.write(y);
else
document.write(x);
}
let x = 10, y = 16;
LeadingZeros(x, y);
</script>
|
PHP
<?php
function LeadingZeros( $x , $y )
{
if (( $x ^ $y ) <= ( $x & $y ))
echo "\nEqual" ;
else if (( $x & (~ $y )) > $y )
echo $y ;
else
echo $x ;
}
$x = 10;
$y = 16;
LeadingZeros( $x , $y );
?>
|
Time Complexity: O(1)
Space Complexity: O(1)
Approach#2: Using format
Take two integer inputs from the user. Convert the input numbers to 8-bit binary strings using the format() function. Count the number of leading zeros in each binary string using the lstrip() and len() functions. Compare the number of leading zeros of the two binary strings. Print the number which has more leading zeros, or a message saying that both numbers have equal number of leading zeros.
Algorithm
1. Read the two integers num1 and num2 from the user.
2. Convert num1 and num2 to 8-bit binary strings using the format() function.
3. Count the number of leading zeros in bin1 and bin2 using the lstrip() and len() functions.
4. Compare leading_zeros1 and leading_zeros2.
5. If leading_zeros1 is greater than leading_zeros2, print num1 has more leading zeros.
6. If leading_zeros2 is greater than leading_zeros1, print num2 has more leading zeros.
7. If leading_zeros1 is equal to leading_zeros2, print both numbers have equal number of leading zeros.
C++
#include <iostream>
#include <string>
#include <bitset>
int main() {
int num1 = 10;
int num2 = 12;
std::string bin1 = std::bitset<8>(num1).to_string();
std::string bin2 = std::bitset<8>(num2).to_string();
int leading_zeros1 = bin1.find_first_not_of( '0' );
int leading_zeros2 = bin2.find_first_not_of( '0' );
if (leading_zeros1 == leading_zeros2) {
std::cout << "Equal" << std::endl;
} else if (leading_zeros1 < leading_zeros2) {
std::cout << num1 << " has fewer leading zeros." << std::endl;
} else {
std::cout << num2 << " has fewer leading zeros." << std::endl;
}
return 0;
}
|
Java
public class Main {
public static void main(String[] args) {
int num1 = 10 ;
int num2 = 12 ;
String bin1 = String.format( "%8s" , Integer.toBinaryString(num1)).replace( ' ' , '0' );
String bin2 = String.format( "%8s" , Integer.toBinaryString(num2)).replace( ' ' , '0' );
int leadingZeros1 = bin1.length() - bin1.replaceAll( "^0+" , "" ).length();
int leadingZeros2 = bin2.length() - bin2.replaceAll( "^0+" , "" ).length();
if (leadingZeros1 == leadingZeros2) {
System.out.println( "Equal" );
} else if (leadingZeros1 < leadingZeros2) {
System.out.println(num1 + " has fewer leading zeros." );
} else {
System.out.println(num2 + " has fewer leading zeros." );
}
}
}
|
Python3
num1 = 10
num2 = 12
bin1 = format (num1, '08b' )
bin2 = format (num2, '08b' )
leading_zeros1 = len (bin1) - len (bin1.lstrip( '0' ))
leading_zeros2 = len (bin2) - len (bin2.lstrip( '0' ))
if leading_zeros1 > leading_zeros2:
print (num1)
elif leading_zeros2 > leading_zeros1:
print (num2)
else :
print ( "Equal" )
|
C#
using System;
class Program
{
static void Main()
{
int num1 = 10;
int num2 = 12;
string bin1 = Convert.ToString(num1, 2).PadLeft(8, '0' );
string bin2 = Convert.ToString(num2, 2).PadLeft(8, '0' );
int leadingZeros1 = bin1.Length - bin1.TrimStart( '0' ).Length;
int leadingZeros2 = bin2.Length - bin2.TrimStart( '0' ).Length;
if (leadingZeros1 == leadingZeros2)
{
Console.WriteLine( "Equal" );
}
else if (leadingZeros1 < leadingZeros2)
{
Console.WriteLine($ "{num1} has fewer leading zeros." );
}
else
{
Console.WriteLine($ "{num2} has fewer leading zeros." );
}
}
}
|
Javascript
function compareLeadingZeros(num1, num2) {
let bin1 = num1.toString(2).padStart(8, '0' );
let bin2 = num2.toString(2).padStart(8, '0' );
let leadingZeros1 = bin1.length - bin1.trimStart( '0' ).length;
let leadingZeros2 = bin2.length - bin2.trimStart( '0' ).length;
if (leadingZeros1 === leadingZeros2) {
console.log( "Equal" );
} else if (leadingZeros1 < leadingZeros2) {
console.log(`${num1} has fewer leading zeros.`);
} else {
console.log(`${num2} has fewer leading zeros.`);
}
}
let num1 = 10;
let num2 = 12;
compareLeadingZeros(num1, num2);
|
Time Complexity: O(1) because the program executes a fixed number of instructions regardless of the input values. The execution time of the program is constant and does not depend on the input size.
Space Complexity: O(1) because the program uses a fixed amount of memory to store the input variables, binary strings, and variables to count the leading zeros. The amount of memory used by the program does not depend on the input size.
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