https://leetcode.com/problems/remove-invalid-parentheses/description/
Remove the minimum number of invalid parentheses in order to make the input string valid. Return all possible results.
Note: The input string may contain letters other than the parentheses ( and ).
Example 1:
Input: "()())()"
Output: ["()()()", "(())()"]
Example 2:
Input: "(a)())()"
Output: ["(a)()()", "(a())()"]
Example 3:
Input: ")("
Output: [""]
- BFS
- 队列
我们的思路是先写一个函数用来判断给定字符串是否是有效的。 然后再写一个函数,这个函数 依次删除第i个字符,判断是否有效,有效则添加进最终的返回数组。
这样的话实现的功能就是, 删除一个
小括号使之有效的所有可能。因此只需要递归调用依次删除第i个字符
的功能就可以了。
而且由于题目要求是要删除最少的小括号,因此我们的思路是使用广度优先遍历,而不是深度有限的遍历。
没有动图,请脑补
-
广度优先遍历
-
使用队列简化操作
-
使用一个visited的mapper, 来避免遍历同样的字符串
/*
* @lc app=leetcode id=301 lang=javascript
*
* [301] Remove Invalid Parentheses
*
* https://leetcode.com/problems/remove-invalid-parentheses/description/
*
* algorithms
* Hard (38.52%)
* Total Accepted: 114.3K
* Total Submissions: 295.4K
* Testcase Example: '"()())()"'
*
* Remove the minimum number of invalid parentheses in order to make the input
* string valid. Return all possible results.
*
* Note: The input string may contain letters other than the parentheses ( and
* ).
*
* Example 1:
*
*
* Input: "()())()"
* Output: ["()()()", "(())()"]
*
*
* Example 2:
*
*
* Input: "(a)())()"
* Output: ["(a)()()", "(a())()"]
*
*
* Example 3:
*
*
* Input: ")("
* Output: [""]
*
*/
var isValid = function(s) {
let openParenthes = 0;
for(let i = 0; i < s.length; i++) {
if (s[i] === '(') {
openParenthes++;
} else if (s[i] === ')') {
if (openParenthes === 0) return false;
openParenthes--;
}
}
return openParenthes === 0;
};
/**
* @param {string} s
* @return {string[]}
*/
var removeInvalidParentheses = function(s) {
if (!s || s.length === 0) return [""];
const ret = [];
const queue = [s];
const visited = {};
let current = null;
let removedParentheses = 0; // 只记录最小改动
while ((current = queue.shift())) {
let hit = isValid(current);
if (hit) {
if (!removedParentheses) {
removedParentheses = s.length - current.length
}
if (s.length - current.length > removedParentheses) return ret.length === 0 ? [""] : ret;;
ret.unshift(current);
continue;
}
for (let i = 0; i < current.length; i++) {
if (current[i] !== ')' && current[i] !== '(') continue;
const subString = current.slice(0, i).concat(current.slice(i + 1));
if (visited[subString]) continue;
visited[subString] = true;
queue.push(subString);
}
}
return ret.length === 0 ? [""] : ret;
};
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