Shortest Palindrome

Given a string S, you are allowed to convert it to a palindrome by adding characters in front of it. Find and return the shortest palindrome you can find by performing this transformation.

For example:

Given "aacecaaa", return "aaacecaaa".

Given "abcd", return "dcbabcd".

Credits:
Special thanks to @ifanchu for adding this problem and creating all test cases. Thanks to @Freezen for additional test cases.

转载自陆草纯。

首先确认一点基本知识，如果某个字符串str是回文的，那么str == reverse(str)

因此，将s逆转之后拼接在s后面，即news=s+reverse(s)，该新字符串news首尾相同的部分，即为s中以s[0]为起始的最长回文子串pres

只不过这里我不用上述的遍历来做，而用类似KMP算法求next数组来做。

在KMP算法中求next数组就是s自我匹配的过程，next[i]的值就表示s[i]之前有几个元素是与s开头元素相同的。

因此，next[news.size()]的值就表示news中首尾相同的部分的长度。接下来就好做了。

注意：当next[news.size()]的值大于s.size()时，说明重复部分贯穿了s与reverse(s)，应该修正为next[news.size()]+1-s.size()

------------------------------------------------------------------------------------------------------------------------------------------------------------

class Solution {

public:

    string shortestPalindrome(string s) {

        if(s == "")

            return s;

        string s2 = s;

        reverse(s2.begin(), s2.end());

        string news = s + s2;

        int n = news.size();

        vector<int> next(n+);

        buildNext(news, next, n);

        if(next[n] > s.size())

            next[n] = next[n] +  - s.size();

        string pres = s.substr(next[n]);

        reverse(pres.begin(), pres.end());

        return pres + s;

    }

    void buildNext(string& s, vector<int>& next, int n)

    {

        int k = -;

        int j = ;

        next[] = -;

        while(j < n)

        {

            if(k == - || s[j] == s[k])

            {

                k ++;

                j ++;

                next[j] = k;

            }

            else

            {

                k = next[k];

            }

        }

    }

};