Check given string is oddly palindrome or not | Set 2
Given string str, the task is to check if characters at the odd indexes of str form a palindrome string or not. If not then print “No” else print “Yes”.
Examples:
Input: str = “osafdfgsg”, N = 9
Output: Yes
Explanation:
Odd indexed characters are = { s, f, f, s }
so it will make palindromic string, “sffs”.Input: str = “addwfefwkll”, N = 11
Output: No
Explanation:
Odd indexed characters are = {d, w, e, w, l}
so it will not make palindrome string, “dwewl”
Naive Approach: Please refer the Set 1 of this article for naive approach
Efficient Approach: The idea is to check if oddString formed by appending odd indices of given string forms a palindrome or not. So, instead of creating oddString and then checking for the palindrome, we can use a stack to optimize running time. Below are the steps:
- For checking oddString to be a palindrome, we need to compare odd indices characters of the first half of the string with odd characters of the second half of string.
- Push odd index character of the first half of the string- into a stack.
- To compare odd index character of the second half with the first half do the following:
- Pop characters from the stack and match it with the next odd index character of the second half of string.
- If the above two characters are not equal then string formed by odd indices is not palindromic. Print “NO” and break from the loop.
- Else match for every remaining odd character of the second half of the string.
- In the end, we need to check if the size of the stack is zero. If it is, then string formed by odd indices will be palindrome, else not.
Below is the implementation of the above approach:
C++
// C++ program for the above approach#include <bits/stdc++.h>using namespace std;// Function to check if string formed// by odd indices is palindromic or notbool isOddStringPalindrome( string str, int n){ int oddStringSize = n / 2; // Check if length of OddString // odd, to consider edge case bool lengthOdd = ((oddStringSize % 2 == 1) ? true : false); stack<char> s; int i = 1; int c = 0; // Push odd index character of // first half of str in stack while (i < n && c < oddStringSize / 2) { s.push(str[i]); i += 2; c++; } // Middle element of odd length // palindromic string is not // compared if (lengthOdd) i = i + 2; while (i < n && s.size() > 0) { if (s.top() == str[i]) s.pop(); else break; i = i + 2; } // If stack is empty // then return true if (s.size() == 0) return true; return false;}// Driver Codeint main(){ int N = 10; // Given string string s = "aeafacafae"; if (isOddStringPalindrome(s, N)) cout << "Yes\n"; else cout << "No\n"; return 0;} |
Java
// Java program for the above approachimport java.util.*;class GFG{// Function to check if String formed// by odd indices is palindromic or notstatic boolean isOddStringPalindrome(String str, int n){ int oddStringSize = n / 2; // Check if length of OddString // odd, to consider edge case boolean lengthOdd = ((oddStringSize % 2 == 1) ? true : false); Stack<Character> s = new Stack<Character>(); int i = 1; int c = 0; // Push odd index character of // first half of str in stack while (i < n && c < oddStringSize / 2) { s.add(str.charAt(i)); i += 2; c++; } // Middle element of odd length // palindromic String is not // compared if (lengthOdd) i = i + 2; while (i < n && s.size() > 0) { if (s.peek() == str.charAt(i)) s.pop(); else break; i = i + 2; } // If stack is empty // then return true if (s.size() == 0) return true; return false;}// Driver Codepublic static void main(String[] args){ int N = 10; // Given String String s = "aeafacafae"; if (isOddStringPalindrome(s, N)) System.out.print("Yes\n"); else System.out.print("No\n");}}// This code is contributed by Rohit_ranjan |
Python3
# Python3 program for the above approach# Function to check if string formed# by odd indices is palindromic or notdef isOddStringPalindrome(str, n): oddStringSize = n // 2; # Check if length of OddString # odd, to consider edge case lengthOdd = True if (oddStringSize % 2 == 1) else False s = [] i = 1 c = 0 # Push odd index character of # first half of str in stack while (i < n and c < oddStringSize // 2): s.append(str[i]) i += 2 c += 1 # Middle element of odd length # palindromic string is not # compared if (lengthOdd): i = i + 2 while (i < n and len(s) > 0): if (s[len(s) - 1] == str[i]): s.pop() else: break i = i + 2 # If stack is empty # then return true if (len(s) == 0): return True return False;# Driver code if __name__=="__main__": N = 10 # Given string s = "aeafacafae" if (isOddStringPalindrome(s, N)): print("Yes") else: print("No")# This code is contributed by rutvik_56 |
C#
// C# program for the above approachusing System;using System.Collections.Generic;class GFG{// Function to check if String formed// by odd indices is palindromic or notstatic bool isOddStringPalindrome(String str, int n){ int oddStringSize = n / 2; // Check if length of OddString // odd, to consider edge case bool lengthOdd = ((oddStringSize % 2 == 1) ? true : false); Stack<char> s = new Stack<char>(); int i = 1; int c = 0; // Push odd index character of // first half of str in stack while (i < n && c < oddStringSize / 2) { s.Push(str[i]); i += 2; c++; } // Middle element of odd length // palindromic String is not // compared if (lengthOdd) i = i + 2; while (i < n && s.Count > 0) { if (s.Peek() == str[i]) s.Pop(); else break; i = i + 2; } // If stack is empty // then return true if (s.Count == 0) return true; return false;}// Driver Codepublic static void Main(String[] args){ int N = 10; // Given String String s = "aeafacafae"; if (isOddStringPalindrome(s, N)) Console.Write("Yes\n"); else Console.Write("No\n");}}// This code is contributed by Princi Singh |
Javascript
<script>// Javascript program for the above approach// Function to check if string formed// by odd indices is palindromic or notfunction isOddStringPalindrome( str, n){ var oddStringSize = parseInt(n / 2); // Check if length of OddString // odd, to consider edge case var lengthOdd = ((oddStringSize % 2 == 1) ? true : false); var s = []; var i = 1; var c = 0; // Push odd index character of // first half of str in stack while (i < n && c < parseInt(oddStringSize / 2)) { s.push(str[i]); i += 2; c++; } // Middle element of odd length // palindromic string is not // compared if (lengthOdd) i = i + 2; while (i < n && s.length > 0) { if (s[s.length-1] == str[i]) s.pop(); else break; i = i + 2; } // If stack is empty // then return true if (s.length == 0) return true; return false;}// Driver Codevar N = 10;// Given stringvar s = "aeafacafae";if (isOddStringPalindrome(s, N)) document.write( "Yes");else document.write( "No\n");// This code is contributed by rrrtnx.</script> |
Output:
Yes
Time Complexity: O(N)
Space Complexity: O(N)
Efficient Approach 2: The above naive approach can be solved without using extra space. We will use Two Pointers Technique, left and right pointing to first odd index from the beginning and from the end respectively. Below are the steps:
- Check whether length of string is odd or even.
- If length is odd, then initialize left = 1 and right = N-2
- Else, initialize left = 1 and right = N-1
- Increment left pointer by 2 position and decrement right pointer by 2 position.
- Keep comparing the characters pointed by pointers till left <= right.
- If no mis-match occurs then, the string is palindrome, else it is not palindromic.
Below is the implementation of the above approach:
C++
// C++ program for the above approach#include <bits/stdc++.h>using namespace std;// Functions checks if characters at// odd index of the string forms// palindrome or notbool isOddStringPalindrome(string str, int n){ // Initialise two pointers int left, right; if (n % 2 == 0) { left = 1; right = n - 1; } else { left = 1; right = n - 2; } // Iterate till left <= right while (left < n && right >= 0 && left < right) { // If there is a mismatch occurs // then return false if (str[left] != str[right]) return false; // Increment and decrement the left // and right pointer by 2 left += 2; right -= 2; } return true;}// Driver Codeint main(){ int n = 10; // Given String string s = "aeafacafae"; // Function Call if (isOddStringPalindrome(s, n)) cout << "Yes\n"; else cout << "No\n"; return 0;} |
Java
// Java program for the above approachimport java.util.*;class GFG{// Functions checks if characters at// odd index of the String forms// palindrome or notstatic boolean isOddStringPalindrome(String str, int n){ // Initialise two pointers int left, right; if (n % 2 == 0) { left = 1; right = n - 1; } else { left = 1; right = n - 2; } // Iterate till left <= right while (left < n && right >= 0 && left < right) { // If there is a mismatch occurs // then return false if (str.charAt(left) != str.charAt(right)) return false; // Increment and decrement the left // and right pointer by 2 left += 2; right -= 2; } return true;}// Driver Codepublic static void main(String[] args){ int n = 10; // Given String String s = "aeafacafae"; // Function Call if (isOddStringPalindrome(s, n)) System.out.print("Yes\n"); else System.out.print("No\n");}}// This code is contributed by Rohit_ranjan |
Python3
# Python3 program for the above approach# Functions checks if characters at # odd index of the string forms # palindrome or notdef isOddStringPalindrome(Str, n): # Initialise two pointers left, right = 0, 0 if (n % 2 == 0): left = 1 right = n - 1 else: left = 1 right = n - 2 # Iterate till left <= right while (left < n and right >= 0 and left < right): # If there is a mismatch occurs # then return false if (Str[left] != Str[right]): return False # Increment and decrement the left # and right pointer by 2 left += 2 right -= 2 return True# Driver Codeif __name__ == '__main__': n = 10 # Given string Str = "aeafacafae" # Function call if (isOddStringPalindrome(Str, n)): print("Yes") else: print("No")# This code is contributed by himanshu77 |
C#
// C# program for the above approachusing System;class GFG{// Functions checks if characters at// odd index of the String forms// palindrome or notstatic bool isOddStringPalindrome(String str, int n){ // Initialise two pointers int left, right; if (n % 2 == 0) { left = 1; right = n - 1; } else { left = 1; right = n - 2; } // Iterate till left <= right while (left < n && right >= 0 && left < right) { // If there is a mismatch occurs // then return false if (str[left] != str[right]) return false; // Increment and decrement the left // and right pointer by 2 left += 2; right -= 2; } return true;}// Driver Codepublic static void Main(String[] args){ int n = 10; // Given String String s = "aeafacafae"; // Function Call if (isOddStringPalindrome(s, n)) Console.Write("Yes\n"); else Console.Write("No\n");}}// This code is contributed by Rohit_ranjan |
Javascript
<script>// Javascript program for the above approach// Functions checks if characters at// odd index of the string forms// palindrome or notfunction isOddStringPalindrome(str, n){ // Initialise two pointers var left, right; if (n % 2 == 0) { left = 1; right = n - 1; } else { left = 1; right = n - 2; } // Iterate till left <= right while (left < n && right >= 0 && left < right) { // If there is a mismatch occurs // then return false if (str[left] != str[right]) return false; // Increment and decrement the left // and right pointer by 2 left += 2; right -= 2; } return true;}// Driver Codevar n = 10;// Given Stringvar s = "aeafacafae";// Function Callif (isOddStringPalindrome(s, n)) document.write( "Yes");else document.write( "No");// This code is contributed by importantly.</script> |
Output:
Yes
Time Complexity: O(N)
Space Complexity: O(1)
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