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Check if all substrings of length K of a Binary String has equal count of 0s and 1s

Given a binary string S of length N and an even integer K, the task is to check if all substrings of length K contains an equal number of 0s and 1s. If found to be true, print “Yes”. Otherwise, print “No”.

Examples:



Input: S = “101010”, K = 2
Output: Yes
Explanation:
Since all the substrings of length 2 has equal number of 0s and 1s, the answer is Yes.

Input: S = “101011”, K = 4
Output: No
Explanation:
Since substring “1011” has unequal count of 0s and 1s, the answer is No..



Naive Approach: The simplest approach to solve the problem is to generate all substrings of length K and check it if it contains an equal count of 1s and 0s or not. 

Time Complexity: O(N2) 
Auxiliary Space: O(1)

Efficient Approach: The main observation for optimizing the above approach is, for the string S to have an equal count of 0 and 1 in substrings of length K, S[i] must be equal to S[i + k]. Follow the steps below to solve the problem:

Below is the implementation of the above approach:




// C++ program for the above approach
#include <iostream>
using namespace std;
 
// Function to check if the substring
// of length K has equal 0 and 1
int check(string& s, int k)
{
    int n = s.size();
 
    // Traverse the string
    for (int i = 0; i < k; i++) {
        for (int j = i; j < n; j += k) {
 
            // Check if every K-th character
            // is the same or not
            if (s[i] != s[j])
                return false;
        }
    }
    int c = 0;
 
    // Traverse substring of length K
    for (int i = 0; i < k; i++) {
 
        // If current character is 0
        if (s[i] == '0')
 
            // Increment count
            c++;
 
        // Otherwise
        else
 
            // Decrement count
            c--;
    }
 
    // Check for equal 0s and 1s
    if (c == 0)
        return true;
    else
        return false;
}
 
// Driver code
int main()
{
    string s = "101010";
    int k = 2;
 
    if (check(s, k))
        cout << "Yes" << endl;
    else
        cout << "No" << endl;
 
    return 0;
}
 





                        























                                    



                                    




                                    




                                    


                                



















// Java program for 


// the above approach



import java.util.*;




class GFG{



 


// Function to check if the substring


// of length K has equal 0 and 1



static boolean check(String s, int k)



{



  int n = s.length();



 



  // Traverse the String




  for (int i = 0; i < k; i++) 




  {




    for (int j = i; j < n; j += k) 




    {




      // Check if every K-th character




      // is the same or not




      if (s.charAt(i) != s.charAt(j))




        return false;




    }




  }




  int c = 0;



 



  // Traverse subString of length K




  for (int i = 0; i < k; i++) 




  {




    // If current character is 0




    if (s.charAt(i) == '0')



 



      // Increment count




      c++;



 



    // Otherwise




    else



 



      // Decrement count




      c--;




  }



 



  // Check for equal 0s and 1s




  if (c == 0)




    return true;




  else




    return false;



}


 


// Driver code



public static void main(String[] args)



{



  String s = "101010";




  int k = 2;



 



  if (check(s, k))




    System.out.print("Yes" + "\n");




  else




    System.out.print("No" + "\n");



}


}


 


// This code is contributed by 29AjayKumar


















                        






                        























                                    



                                    




                                    




                                    


                                



















# Python3 program for the above approach



  


# Function to check if the substring


# of length K has equal 0 and 1



def check(s, k):




     



    n = len(s)




  



    # Traverse the string




    for i in range(k):




        for j in range(i, n, k):




  



            # Check if every K-th character




            # is the same or not




            if (s[i] != s[j]):




                return False




                 



    c = 0




  



    # Traverse substring of length K




    for i in range(k):




  



        # If current character is 0




        if (s[i] == '0'):




  



            # Increment count




            c += 1




  



        # Otherwise




        else:




             



            # Decrement count




            c -= 1




             



    # Check for equal 0s and 1s




    if (c == 0):




        return True




    else:




        return False



 


# Driver code



s = "101010"




k = 2




  



if (check(s, k) != 0):




    print("Yes")




else:




    print("No") 




  


# This code is contributed by sanjoy_62


















                        






                        























                                    



                                    




                                    




                                    


                                



















// C# program for 


// the above approach



using System;




class GFG{



 


// Function to check if the substring


// of length K has equal 0 and 1



static bool check(String s, int k)



{



  int n = s.Length;



 



  // Traverse the String




  for (int i = 0; i < k; i++) 




  {




    for (int j = i; j < n; j += k) 




    {




      // Check if every K-th character




      // is the same or not




      if (s[i] != s[j])




        return false;




    }




  }




  int c = 0;



 



  // Traverse subString of length K




  for (int i = 0; i < k; i++) 




  {




    // If current character is 0




    if (s[i] == '0')



 



      // Increment count




      c++;



 



    // Otherwise




    else



 



      // Decrement count




      c--;




  }



 



  // Check for equal 0s and 1s




  if (c == 0)




    return true;




  else




    return false;



}


 


// Driver code



public static void Main(String[] args)



{



  String s = "101010";




  int k = 2;



 



  if (check(s, k))




    Console.Write("Yes" + "\n");




  else




    Console.Write("No" + "\n");



}


}


 


// This code is contributed by Rajput-Ji


















                        






                        























                                    



                                    




                                    




                                    


                                



















<script>


// javascript program for the


// above approach


 


// Function to check if the substring


// of length K has equal 0 and 1



function check(s, k)



{



  let n = s.length;




  



  // Traverse the String




  for (let i = 0; i < k; i++)




  {




    for (let j = i; j < n; j += k)




    {




      // Check if every K-th character




      // is the same or not




      if (s[i] != s[j])




        return false;




    }




  }




  let c = 0;




  



  // Traverse subString of length K




  for (let i = 0; i < k; i++)




  {




    // If current character is 0




    if (s[i]== '0')




  



      // Increment count




      c++;




  



    // Otherwise




    else




  



      // Decrement count




      c--;




  }




  



  // Check for equal 0s and 1s




  if (c == 0)




    return true;




  else




    return false;



}



  


// Driver Code


 



     let s = "101010";




  let k = 2;




  



  if (check(s, k))




    document.write("Yes" + "<br/>");




  else




    document.write("No");



 


// This code is contributed by target_2.


</script>


















                        






                        








Output: 

Yes


 


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

	

        Article Tags : 
        

            DSA
Greedy
Pattern Searching
Searching
Strings        


		
	

	


      

      

          
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