Palindrome Partitioning
Given a string s, partition s such that every substring of the partition is a palindrome.
Return all possible palindrome partitioning of s.
For example, given s = "aab"
,
Return
[ ["aa","b"], ["a","a","b"] ]
又是一道回文的题目,回文系列有非常多的题目,主要是DP+search的思路。这题也是。
先用DP求一个是否回文的状态矩阵,之后根据这个状态矩阵做dfs+backtracking;当然也可以一边DP,一边组织结果,针对结尾位置保存一个数组,每次可以针对当前回文字符加上之前那个位置有的所有组合做一个组合(https://discuss.leetcode.com/topic/2884/my-java-dp-only-solution-without-recursion-o-n-2)。
我的代码如下:
class Solution(object): def partition(self, s): """ :type s: str :rtype: List[List[str]] """ #first find the 2 dimension dp state #then search and backtracking to generate result. #dp order is very important dp = [[False]*len(s) for i in xrange(len(s))] for i in xrange(len(s)-1, -1, -1): #start for j in xrange(i, len(s)): #end if s[i] == s[j] and (i+1>j-1 or dp[i+1][j-1] == True): #核心判断语句 dp[i][j] = True res = [] self.helper(res, [], 0, dp, s) return res def helper(self, res, cur, index, dp, s): if index == len(s): res.append(cur+[]) return for i in xrange(index, len(s)): if dp[index][i] == True: cur.append(s[index:i+1]) self.helper(res, cur, i+1, dp, s) cur.pop()
posted on 2016-09-03 19:49 Sheryl Wang 阅读(155) 评论(0) 编辑 收藏 举报