Leetcode 20 - Valid Parentheses
题目描述
Leetcode 20 主要考察了栈的思想。
给定一个字符串 s,其中包含 '(', ')', '{', '}', '[' , ']'
字符,判断给定的字符串是否是有效字符串。
规则如下:
- 打开的括号,必须被相同类型的括号关上。
- 打开的括号,必须被按照顺序被关上。
# Note that an empty string is also considered valid.
# Example:
# Input: "()"
# Output: true
#
# Input: "()[]{}"
# Output: true
#
# Input: "(]"
# Output: false
#
# Input: "([)]"
# Output: false
#
# Input: "{[]}"
# Output: true
解题思路
由于栈拥有先进后出的特性,可以将字符串中每个字符按照一定规则入栈和出栈中,如果放入的是左括号,则入栈,否则出栈并判断。
# Question: Valid Parentheses
# Given a string containing just the characters '(', ')', '{', '}', '[' and ']'
# , determine if the input string is valid.
#
# An input string is valid if:
# 1. Open brackets must be closed by the same type of brackets.
# 2. Open brackets must be closed in the correct order.
# Note that an empty string is also considered valid.
# Example:
# Input: "()"
# Output: true
#
# Input: "()[]{}"
# Output: true
#
# Input: "(]"
# Output: false
#
# Input: "([)]"
# Output: false
#
# Input: "{[]}"
# Output: true
class Solution:
def isValid(self, s: str) -> bool:
bracket_list = {'(': ')', '{': '}', '[': ']'}
stack = []
if str == '':
return True
for char in s:
if char in bracket_list.keys():
stack.append(bracket_list[char])
else:
if stack and stack[-1] == char:
stack.pop()
else:
return False
return len(stack) == 0
if __name__ == '__main__':
s = Solution()
print(s.isValid('()'))
print(s.isValid('()[]{}'))
print(s.isValid('(]'))
print(s.isValid('([)]'))
print(s.isValid('{[]}'))
print(s.isValid(']]]'))