【LeetCode】#10正则表达式匹配(Regular Expression Matching)

【LeetCode】#10正则表达式匹配(Regular Expression Matching)

题目描述

给定一个字符串 (s) 和一个字符模式 §。实现支持 ‘.’ 和 ‘’ 的正则表达式匹配。
‘.’ 匹配任意单个字符。
'’ 匹配零个或多个前面的元素。
匹配应该覆盖整个字符串 (s) ，而不是部分字符串。
说明:
s 可能为空，且只包含从 a-z 的小写字母。
p 可能为空，且只包含从 a-z 的小写字母，以及字符 . 和 *。

示例

示例 1:

输入:
s = “aa”
p = “a”
输出: false
解释: “a” 无法匹配 “aa” 整个字符串。

示例 2:

输入:
s = “aa”
p = “a*”
输出: true
解释: ‘*’ 代表可匹配零个或多个前面的元素, 即可以匹配 ‘a’ 。因此, 重复 ‘a’ 一次, 字符串可变为 “aa”。

示例 3:

输入:
s = “ab”
p = “."
输出: true
解释: ".” 表示可匹配零个或多个(’*’)任意字符(’.’)。

示例 4:

输入:
s = “aab”
p = “cab”
输出: true
解释: ‘c’ 可以不被重复, ‘a’ 可以被重复一次。因此可以匹配字符串 “aab”。

示例 5:

输入:
s = “mississippi”
p = “misisp*.”
输出: false

Description

Given an input string (s) and a pattern §, implement regular expression matching with support for ‘.’ and ‘’.
‘.’ Matches any single character.
'’ Matches zero or more of the preceding element.
The matching should cover the entire input string (not partial).
Note:
s could be empty and contains only lowercase letters a-z.
p could be empty and contains only lowercase letters a-z, and characters like . or *.

Example

Example 1:

Input:
s = “aa”
p = “a”
Output: false
Explanation: “a” does not match the entire string “aa”.

Example 2:

Input:
s = “aa”
p = “a*”
Output: true
Explanation: ‘*’ means zero or more of the precedeng element, ‘a’. Therefore, by repeating ‘a’ once, it becomes “aa”.

Example 3:

Input:
s = “ab”
p = “."
Output: true
Explanation: ".” means “zero or more (*) of any character (.)”.

Example 4:

Input:
s = “aab”
p = “cab”
Output: true
Explanation: c can be repeated 0 times, a can be repeated 1 time. Therefore it matches “aab”.

Example 5:

Input:
s = “mississippi”
p = “misisp*.”
Output: false

解法

class Solution{
	public boolean isMatch(String s, String p){
		if(p.isEmpty())
			return s.isEmpty();
		boolean first = (!s.isEmpty() && (p.charAt(0)==s.charAt(0) || p.charAt(0)=='.'));
		if(p.length()>=2 && p.charAt(1)=="*"){
			return (isMatch(s, p.substring(2)) || (first && isMatch(text.substring(1), p)));
		}else{
			return first && isMatch(s.substring(1), p.substring(1));
		}
	}
}