Problem Description:
Given a string, determine if a permutation of the string could form a palindrome.
For example,"code" -> False, "aab" -> True, "carerac" -> True.
Hint:
- Consider the palindromes of odd vs even length. What difference do you notice?
- Count the frequency of each character.
- If each character occurs even number of times, then it must be a palindrome. How about character which occurs odd number of times?
Just check there are no more than 2 characters that appear an odd number of times in the string.
My C++ code using an array as a hash map is as follows.
1 class Solution { 2 public: 3 bool canPermutePalindrome(string s) { 4 int odd = 0, counts[256] = {0}; 5 for (char c : s) 6 odd += ++counts[c] & 1 ? 1 : -1; 7 return odd <= 1; 8 } 9 };
BTW, Stefan has posted many nice solutions here, including the following one that uses bitset.
1 class Solution { 2 public: 3 bool canPermutePalindrome(string s) { 4 bitset<256> b; 5 for (char c : s) b.flip(c); 6 return b.count() < 2; 7 } 8 };