每日一题: 有效括号

x33g5p2x  于6个月前 转载在 其他  
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面对这个括号匹配的问题,我开始也有点迷茫,隐约觉得可以用栈(Stack)来解决。一起先来看看原题吧:

Given a string s containing just the characters '(', ')', '{', '}', '[' and ']', determine if the input string is valid.

An input string is valid if:

Open brackets must be closed by the same type of brackets.
Open brackets must be closed in the correct order.
Every close bracket has a corresponding open bracket of the same type.
 

Example 1:

Input: s = "()"
Output: true
Example 2:

Input: s = "()[]{}"
Output: true
Example 3:

Input: s = "(]"
Output: false
 

Constraints:

1 <= s.length <= 104
s consists of parentheses only '()[]{}'.

当成一个数学问题来看,先找出规则规律,如果先来一个关闭类型的括号(如),], }),那么直接就算false了,如果开和闭合没有成对出现,也会是false。我们可以拿一个Stack来保存open bracket,当循环的当前的字符是open bracket就push到stack。
当当前的字符是closed bracket则弹出顶部Stack的元素,看是否是对应的open bracket,如果是就继续循环,如果不是则返回false。
还要考虑一些边界情况,如果在弹出元素的时候刚好stack为空了,也说明没有配套的open bracket了,也应该返回false。

用Python实现的代码如下,非常清晰:

class Solution:
    def isValid(self, s: str) -> bool:
        bracketMap = {
            "(": ")",
            "{": "}",
            "[": "]"
        }

        stack = []

        for char in s:
            if char in bracketMap:
                # push the open bracket into the stack
                stack.append(char)
            else:
                # If the stack is empty or do not have the matching open bracket, it means the closed bracket does not have the related open bracket
                if len(stack) == 0 or bracketMap[stack.pop()] != char:
                    return False

        return len(stack) == 0

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