Given a string S, we have to find minimum characters that we can remove to make any permutation of the string S a palindrome.
In simple terms, the problem states that: Make the string a palindrome by rearranging it in any way by removing the minimum number of characters including removing 0 number of character if possible.
Note : we are considering only small alphabets.
Examples :
Input : geeksforgeeks Output : 2 Explanation : if we remove 2 characters lets say 'f' and 'r', we remain with "geeksogeeks" which can be re-arranged like "skeegogeeks" to make it a palindrome. Removal of less than 2 character wouldn't make this string a palindrome. Input : shubham Output : 4 If we remove any 4 characters except 'h' (let's say 's', 'b', 'a', 'm'), we remain with "huh" which is a palindrome.
A Naive approach would check every permutation of the string for a palindrome and if not found then remove one character and check again. This approach is very complicated and will take a lot of time.
An Efficient approach: Notice that we don’t need to print the minimum characters, just the minimum number. So, an effective idea is a key that: there can be two types of palindrome, even length, and odd length palindrome. We can deduce the fact that an even length palindrome must have every character occurring even number of times(i.e. the frequency of every character is even). Similarly, an odd palindrome must have every character occurring even number of times except one character occurring odd number of times.
From these facts, the problem turn out to be quite simple. We check frequency of every character and those characters occurring odd number of times are then counted. Then the result is total count of odd frequency characters subtraction 1.
Implementation:
// CPP Program to find minimum number of removal to // make any permutation of the string a palindrome #include <iostream> #include <cstring> using namespace std;
#define MAX_CHAR 26 // function to find minimum removal of characters int minRemoval(string str) {
// hash to store frequency of each character
int hash[MAX_CHAR];
// to set hash array to zeros
memset (hash, 0, sizeof (hash));
// count frequency of each character
for ( int i = 0; str[i]; i++)
hash[str[i] - 'a' ]++;
// count the odd frequency characters
int count = 0;
for ( int i = 0; i < MAX_CHAR; i++)
if (hash[i] % 2)
count++;
// if count is -1 return 0
// otherwise return count
return (count == 0) ? 0 : count-1;
} // Driver's Code int main() {
string str = "geeksforgeeks" ;
cout << minRemoval(str) << endl;
return 0;
} |
// Java Program to find minimum number of removal to // make any permutation of the string a palindrome import java.util.Arrays;
class GFG {
static final int MAX_CHAR = 26 ;
// function to find minimum removal of characters
static int minRemoval(String str) {
// hash to store frequency of each character
int hash[] = new int [MAX_CHAR];
// to set hash array to zeros
Arrays.fill(hash, 0 );
// count frequency of each character
for ( int i = 0 ; i < str.length(); i++)
hash[str.charAt(i) - 'a' ]++;
// count the odd frequency characters
int count = 0 ;
for ( int i = 0 ; i < MAX_CHAR; i++)
if (hash[i] % 2 == 1 )
count++;
// if count is -1 return 0
// otherwise return count
return (count == 0 ) ? 0 : count - 1 ;
}
// Driver code
public static void main(String[] args) {
String str = "geeksforgeeks" ;
System.out.println(minRemoval(str));
}
} // This code is contributed by Anant Agarwal. |
# Python Program to find minimum number of # removal to make any permutation of the # string a palindrome # function to find minimum removal of # characters def minRemoval(strr):
# hash to store frequency of each character
# to set hash array to zeros
hash = [ 0 ] * 26 # count frequency of each character
for char in strr:
hash [ ord (char) - ord ( 'a' )] = hash [ ord (char) - ord ( 'a' )] + 1
# count the odd frequency characters
count = 0
for i in range ( 26 ):
if hash [i] % 2 :
count = count + 1
# if count is 0, return 0
# otherwise return count
return 0 if count = = 0 else count - 1
# Driver's Code if __name__ = = "__main__" :
strr = "geeksforgeeks" ;
# minRemoval to find minimum characters to remove
print (minRemoval(strr))
|
// C# Program to find minimum number of // removal to make any permutation of // the string a palindrome using System;
class GFG {
static int MAX_CHAR = 26;
// function to find minimum removal
// of characters
static int minRemoval( string str) {
// hash to store frequency of
// each character
int []hash = new int [MAX_CHAR];
// to set hash array to zeros
for ( int i = 0; i < MAX_CHAR; i++)
hash[i] = 0;
// count frequency of each character
for ( int i = 0; i < str.Length; i++)
hash[str[i] - 'a' ]++;
// count the odd frequency characters
int count = 0;
for ( int i = 0; i < MAX_CHAR; i++)
if (hash[i] % 2 == 1)
count++;
// if count is -1 return 0
// otherwise return count
return (count == 0) ? 0 : count - 1;
}
// Driver code
public static void Main() {
string str = "geeksforgeeks" ;
Console.Write(minRemoval(str));
}
} // This code is contributed by nitin mittal |
<?php // PHP Program to find minimum // number of removal to make any // permutation of the string a palindrome // function to find minimum // removal of characters function minRemoval( $str )
{ // hash to store frequency of each
// character and to set hash array to zeros
$hash = array_fill (0, 26, 0);
// count frequency of each character
for ( $i = 0; $i < strlen ( $str ); $i ++)
$hash [ord( $str [ $i ]) - 97]++;
// count the odd frequency characters
$count = 0;
for ( $i = 0; $i < 26; $i ++)
if ( $hash [ $i ] % 2)
$count ++;
// if count is -1 return 0
// otherwise return count
return ( $count == 0) ? 0 : $count -1;
} // Driver Code $str = "geeksforgeeks" ;
echo minRemoval( $str ). "\n" ;
// This code is contributed by mits ?> |
<script> // Javascript Program to find minimum number of removal to // make any permutation of the string a palindrome var MAX_CHAR = 26
// function to find minimum removal of characters function minRemoval( str)
{ // hash to store frequency of each character
var hash = Array(MAX_CHAR).fill(0);
// count frequency of each character
for ( var i = 0; str[i]; i++)
hash[str[i].charCodeAt(0) - 'a' .charCodeAt(0)]++;
// count the odd frequency characters
var count = 0;
for ( var i = 0; i < MAX_CHAR; i++)
if (hash[i] % 2)
count++;
// if count is -1 return 0
// otherwise return count
return (count == 0) ? 0 : count-1;
} // Driver's Code var str = "geeksforgeeks" ;
document.write( minRemoval(str)); // This code is contributed by itsok. </script> |
2
Time Complexity: O(n), where n is the length of the given string.
Auxiliary Space: O(1)