5. Longest Palindromic Substring
Problem statement
Given a string s, find the longest palindromic substring in s. You may assume that the maximum length of s is 1000.
Example:
Input: "babad" Output: "bab" Note: "aba" is also a valid answer.Example:
Input: "cbbd" Output: "bb"
Solution: DP
Compare with 516. Longest Palindromic Subsequence, the difference is the subsequence and substring, subsequence does not require all the palindrome is in a row, however, substring must be a consective string. The dynamic programming formula is a little bit different.
dp[i][j] meas s(i, j) is a palindrome or not, if it is the length is j - i + 1;
dp[i][j] is true only s[i] == s[j] and dp[i + 1][j - 1] also is true, or i and j is consective or there is only one element between i and j --> j - i <= 2.
Each time find a palindrome, we should compare the length with previous one and update if necessary.
Time complexity is O(n * n), space complexity is O(n * n).
class Solution { public: string longestPalindrome(string s) { if(s.empty()){ return ""; } int size = s.size(); int dp[size][size] = {}; string ans(""); for(int i = size - 1; i >= 0; i--){ for(int j = i; j < size; j++){ if(s[i] == s[j] && (j - i < 3 || dp[i + 1][j - 1])){ dp[i][j] = 1; if(ans.empty() || j - i + 1 > ans.size()){ ans = s.substr(i, j - i + 1); } } } } return ans; } };
This is the same solution, but we do DP from a different directions.
class Solution { public: string longestPalindrome(string s) { if(s.empty()){ return ""; } int size = s.size(); int dp[size][size] = {0}; string ans; for(int i = 0; i < size; i++){ for(int j = 0; j <= i; j++){ if(s[j] == s[i] && (i - j <= 2 || dp[j + 1][i - 1])){ dp[j][i] = 1; if(ans.empty() || i - j + 1 > ans.size()){ ans = s.substr(j, i - j + 1); } } } } return ans; } };
