1190. 反转每对括号间的子串
给出一个字符串 s(仅含有小写英文字母和括号)。
请你按照从括号内到外的顺序,逐层反转每对匹配括号中的字符串,并返回最终的结果。
注意,您的结果中 不应 包含任何括号。
借助括号匹配思路,每匹配到一对括号,将其反转
class Solution:
def reverseParentheses(self, s: str) -> str:
def reverse(s,l,r):
while l < r:
tmp = s[l]
s[l] = s[r]
s[r] = tmp
l += 1
r -= 1
#每遇到一对括号,反转一次
stack = []
s = list(s)
for i in range(len(s)):
if s[i] == '(':
stack.append(i)
if s[i] == ')':
reverse(s,stack.pop()+1,i-1)
res = []
for c in s:
if c != "(" and c != ")":
res.append(c)
return "".join(res)
逐层反转
以(a(sd)f)为例,先处理sd,反转后得到下一个右括号前的新子串adsf,匹配到右括号后再进行一次反转
class Solution:
def reverseParentheses(self, s: str) -> str:
stack = []
subs = ""
for c in s:
if c == "(":
stack.append(subs)
subs = ""
elif c == ")":
subs = stack.pop()+"".join(reversed(subs))
else:
subs += c
return subs