Given a binary array arr, the task is to find the maximum number of 0s that can be flipped such that the array has no adjacent 1s, i.e. the array does not contain any two 1s at consecutive indices.
Examples:
Input: arr[] = {1, 0, 0, 0, 1}
Output: 1
Explanation:
The 0 at index 2 can be replaced by 1.Input: arr[] = {1, 0, 0, 1}
Output: 0
Explanation:
No 0 (zeroes) can be replaced by 1 such that no two consecutive indices have 1.
Approach:
- Iterate over the array and for every index which have 0, check if its adjacent two indices have 0 or not. For the last and first index of the array, check for the adjacent left and right index respectively.
- For every such index satisfying the above condition, increase the count.
- Print the final count at the end as the required answer
Below is the implementation of the above approach:
C++
// C++ program for the above approach #include<bits/stdc++.h> using namespace std; // Maximum number of 0s that // can be replaced by 1 int canReplace( int array[], int n) { int i = 0, count = 0; while (i < n) { // Check for three consecutive 0s if (array[i] == 0 && (i == 0 || array[i - 1] == 0) && (i == n - 1|| array[i + 1] == 0)) { // Flip the bit array[i] = 1; // Increase the count count++; } i++; } return count; } // Driver's Code int main() { int array[5] = { 1, 0, 0, 0, 1 }; cout << canReplace(array, 5); } // This code is contributed by spp____ |
Java
// Java program for the above approach public class neveropen { // Maximum number of 0s that // can be replaced by 1 public static int canReplace( int [] array) { int i = 0 , count = 0 ; while (i < array.length) { // Check for three consecutive 0s if (array[i] == 0 && (i == 0 || array[i - 1 ] == 0 ) && (i == array.length - 1 || array[i + 1 ] == 0 )) { // Flip the bit array[i] = 1 ; // Increase the count count++; } i++; } return count; } // Driver code public static void main(String[] args) { int [] array = { 1 , 0 , 0 , 0 , 1 }; System.out.println(canReplace(array)); } } |
Python3
# Python3 program for the above approach # Maximum number of 0s that # can be replaced by 1 def canReplace(arr, n): i = 0 count = 0 while (i < n): # Check for three consecutive 0s if (arr[i] = = 0 and (i = = 0 or arr[i - 1 ] = = 0 ) and (i = = n - 1 or arr[i + 1 ] = = 0 )): # Flip the bit arr[i] = 1 # Increase the count count + = 1 i + = 1 return count # Driver code if __name__ = = '__main__' : arr = [ 1 , 0 , 0 , 0 , 1 ] print (canReplace(arr, 5 )) # This code is contributed by himanshu77 |
C#
// C# program for the above approach using System; class GFG{ // Maximum number of 0s that // can be replaced by 1 public static int canReplace( int [] array) { int i = 0, count = 0; while (i < array.Length) { // Check for three consecutive 0s if (array[i] == 0 && (i == 0 || array[i - 1] == 0) && (i == array.Length - 1 || array[i + 1] == 0)) { // Flip the bit array[i] = 1; // Increase the count count++; } i++; } return count; } // Driver code public static void Main(String []args) { int [] array = { 1, 0, 0, 0, 1 }; Console.WriteLine(canReplace(array)); } } // This code is contributed by Rajput-Ji |
Javascript
<script> // Javascript program for // the above approach // Maximum number of 0s that // can be replaced by 1 function canReplace(array, n) { var i = 0, count = 0; while (i < n) { // Check for three consecutive 0s if (array[i] == 0 && (i == 0 || array[i - 1] == 0) && (i == n - 1|| array[i + 1] == 0)) { // Flip the bit array[i] = 1; // Increase the count count++; } i++; } return count; } // Driver's Code array = [1, 0, 0, 0, 1] document.write(canReplace(array, 5)); </script> |
1
Time Complexity: O(N)
Auxiliary Space: O(1)
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