Given an input string (s) and a pattern (p), 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:
scould be empty and contains only lowercase lettersa-z.pcould be empty and contains only lowercase lettersa-z, and characters like.or*.
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 = "c*a*b" 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 = "mis*is*p*." Output: false
class Solution { public boolean isMatch(String text, String pattern) { //递归结束条件 if(pattern.isEmpty()) return text.isEmpty(); //判断 text 是否为空,防止越界,如果 text 为空, 表达式直接判为 false, text.charAt(0)就不会执行了 boolean firstmatch = (!text.isEmpty() && (pattern.charAt(0) == text.charAt(0) || pattern.charAt(0) == '.')); //两种情况 //pattern 直接跳过两个字符。表示 * 前边的字符出现 0 次 //pattern 不变,例如 text = aa ,pattern = a*,第一个 a 匹配,然后 text 的第二个 a 接着和 pattern 的第一个 a 进行匹配。表示 * 用前一个字符替代。 if(pattern.length() >= 2 && pattern.charAt(1) == '*'){ return (isMatch(text, pattern.substring(2)) || firstmatch && isMatch(text.substring(1), pattern)); } else return firstmatch && isMatch(text.substring(1), pattern.substring(1)); } }
https://leetcode.windliang.cc/leetCode-10-Regular-Expression-Matching.html
厉害了 我的哥