Given a Binary Circular Array of size N elements and two positive integers x and y indicating the indices in the circular array. The task is check which path, clockwise or anti-clockwise, from index x to index y, we face the minimum number bit flips. Output “Clockwise” or “Anti-clockwise” and the value of minimum bit flip, in case of equal count output “Clockwise”.
Examples:
Input : arr[] = { 0, 0, 0, 1, 1, 0 } x = 0, y = 5 Output : Anti-clockwise 0 The path 0 -> 1 -> 2 -> 3 -> 4 -> 5, we have only 1 value change i.e from index 2 to 3. The path 0 -> 5 have 0 value change. So, the answer is Anti-clockwise 0. Input : s = { 1, 1, 0, 1, 1 } x = 2, y = 0 Output : Clockwise 1
The idea is to check by going once Clockwise and store the count1 and then going anti-clockwise and store the count2. Then output by comparing count1 and count2.
How to travel clockwise or anticlockwise?
It will be hard to travel clockwise in the array where x > y and same in case of anticlockwise where y > x. So, we will store the given binary array in the string “S”. And to make it circular, we will append S to S i.e S = S + S. We will make the adjustment in x and y to travel clockwise or anticlockwise.
Now, if y > x and to go clockwise, it will be easy to iterate from x to y and calculate the number of flip bits.
If y > x and to go anti-clockwise, we will add |S| to x then iterate from y to x and calculate the number of flip bits.
Now, if x > y, we will swap x and y and calculate the answer using above approach. Then output the opposite of the result .
To calculate the number of flip bits, just store the current bit of index and check if next index have the same bit as current. If yes then do nothing else change the current bit to the bit of the next index and increment minimum bit by 1.
Below is the implementation of this approach:
C++
// CPP program to find direction with minimum flips #include <bits/stdc++.h> using namespace std; // finding which path have minimum flip bit and // the minimum flip bits void minimumFlip(string s, int x, int y) { // concatenating given string to itself, // to make it circular s = s + s; // check x is greater than y. // marking if output need to // be opposite. bool isOpposite = false ; if (x > y) { swap(x, y); isOpposite = true ; } // iterate Clockwise int valClockwise = 0; char cur = s[x]; for ( int i = x; i <= y; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valClockwise++; } } // iterate Anti-Clockwise int valAnticlockwise = 0; cur = s[y]; x += s.length(); for ( int i = y; i <= x; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valAnticlockwise++; } } // Finding whether Clockwise or Anti-clockwise // path take minimum flip. if (valClockwise <= valAnticlockwise) { if (!isOpposite) cout << "Clockwise " << valClockwise << endl; else cout << "Anti-clockwise " << valAnticlockwise << endl; } else { if (!isOpposite) cout << "Anti-clockwise " << valAnticlockwise << endl; else cout << "Clockwise " << valClockwise << endl; } } // Driven Program int main() { int x = 0, y = 8; string s = "000110" ; minimumFlip(s, x, y); return 0; } |
Java
// Java program to find direction // with minimum flips class GFG { // finding which path have // minimum flip bit and // the minimum flip bits static void minimumFlip(String s, int x, int y) { // concatenating given string to // itself, to make it circular s = s + s; // check x is greater than y. // marking if output need to // be opposite. boolean isOpposite = false ; if (x > y) { swap(x, y); isOpposite = true ; } // iterate Clockwise int valClockwise = 0 ; char cur = s.charAt(x); for ( int i = x; i <= y; i++) { // if current bit is not equal // to next index bit. if (s.charAt(i) != cur) { cur = s.charAt(i); valClockwise++; } } // iterate Anti-Clockwise int valAnticlockwise = 0 ; cur = s.charAt(y); x += s.length(); for ( int i = y; i < x; i++) { // if current bit is not equal // to next index bit. if (s.charAt(i) != cur) { cur = s.charAt(i); valAnticlockwise++; } } // Finding whether Clockwise // or Anti-clockwise path // take minimum flip. if (valClockwise <= valAnticlockwise) { if (!isOpposite) { System.out.println( "Clockwise " + valClockwise); } else { System.out.println( "Anti-clockwise " + valAnticlockwise); } } else if (!isOpposite) { System.out.println( "Anti-clockwise " + valAnticlockwise); } else { System.out.println( "Clockwise " + valClockwise); } } static void swap( int a, int b) { int c = a; a = b; b = c; } // Driver code public static void main(String[] args) { int x = 0 , y = 8 ; String s = "000110" ; minimumFlip(s, x, y); } } // This code is contributed by 29AjayKumar |
Python3
# Python 3 program to find direction # with minimum flips # finding which path have minimum flip bit # and the minimum flip bits def minimumFlip(s, x, y): # concatenating given string to itself, # to make it circular s = s + s # check x is greater than y. # marking if output need to # be opposite. isOpposite = False if (x > y): temp = y y = x; x = temp isOpposite = True # iterate Clockwise valClockwise = 0 cur = s[x] for i in range (x, y + 1 , 1 ): # if current bit is not equal # to next index bit. if (s[i] ! = cur): cur = s[i] valClockwise + = 1 # iterate Anti-Clockwise valAnticlockwise = 0 cur = s[y] x + = len (s) - 1 for i in range (y, x + 1 , 1 ): # if current bit is not equal # to next index bit. if (s[i] ! = cur): cur = s[i] valAnticlockwise + = 1 # Finding whether Clockwise or Anti-clockwise # path take minimum flip. if (valClockwise < = valAnticlockwise): if (isOpposite = = False ): print ( "Clockwise" , valClockwise) else : print ( "Anti-clockwise" , valAnticlockwise) else : if (isOpposite = = False ): print ( "Anti-clockwise" , valAnticlockwise) else : print ( "Clockwise" , valClockwise) # Driver Code if __name__ = = '__main__' : x = 0 y = 8 s = "000110" minimumFlip(s, x, y) # This code is contributed by # Surendra_Gangwar |
C#
// C# program to find direction // with minimum flips using System; class GFG { // finding which path have // minimum flip bit and // the minimum flip bits static void minimumFlip(String s, int x, int y) { // concatenating given string to // itself, to make it circular s = s + s; // check x is greater than y. // marking if output need to // be opposite. bool isOpposite = false ; if (x > y) { swap(x, y); isOpposite = true ; } // iterate Clockwise int valClockwise = 0; char cur = s[x]; for ( int i = x; i <= y; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valClockwise++; } } // iterate Anti-Clockwise int valAnticlockwise = 0; cur = s[y]; x += s.Length; for ( int i = y; i < x; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valAnticlockwise++; } } // Finding whether Clockwise // or Anti-clockwise path // take minimum flip. if (valClockwise <= valAnticlockwise) { if (!isOpposite) { Console.WriteLine( "Clockwise " + valClockwise); } else { Console.WriteLine( "Anti-clockwise " + valAnticlockwise); } } else if (!isOpposite) { Console.WriteLine( "Anti-clockwise " + valAnticlockwise); } else { Console.WriteLine( "Clockwise " + valClockwise); } } static void swap( int a, int b) { int c = a; a = b; b = c; } // Driver code public static void Main(String[] args) { int x = 0, y = 8; String s = "000110" ; minimumFlip(s, x, y); } } // This code contributed by Rajput-Ji |
Javascript
<script> // Javascript program to find direction with minimum flips // finding which path have minimum flip bit and // the minimum flip bits function minimumFlip(s, x, y) { // concatenating given string to itself, // to make it circular s = s + s; // check x is greater than y. // marking if output need to // be opposite. var isOpposite = false ; if (x > y) { swap(x, y); isOpposite = true ; } // iterate Clockwise var valClockwise = 0; var cur = s[x]; for ( var i = x; i <= y; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valClockwise++; } } // iterate Anti-Clockwise var valAnticlockwise = 0; cur = s[y]; x += s.length; for ( var i = y; i <= x; i++) { // if current bit is not equal // to next index bit. if (s[i] != cur) { cur = s[i]; valAnticlockwise++; } } // Finding whether Clockwise or Anti-clockwise // path take minimum flip. if (valClockwise <= valAnticlockwise) { if (!isOpposite) document.write( "Clockwise " + valClockwise + "<br>" ); else document.write( "Anti-clockwise " + valAnticlockwise + "<br>" ); } else { if (!isOpposite) document.write( "Anti-clockwise " + valAnticlockwise + "<br>" ); else document.write( "Clockwise " + valClockwise + "<br>" ); } } // Driven Program var x = 0, y = 8; var s = "000110" ; minimumFlip(s, x, y); // This code is contributed by rrrtnx. </script> |
Clockwise 2
Complexity Analysis:
- Time Complexity: O(y-x) + O(x-y), where x and y are given by user
- Auxiliary Space: O(1), as no extra space was used
Ready to dive in? Explore our Free Demo Content and join our DSA course, trusted by over 100,000 neveropen!