标签:输入 python uri ems ase isl 大小写 char ror
题目链接 : https://leetcode-cn.com/problems/valid-palindrome/
给定一个字符串,验证它是否是回文串,只考虑字母和数字字符,可以忽略字母的大小写。
说明:本题中,我们将空字符串定义为有效的回文串。
示例 1:
输入: "A man, a plan, a canal: Panama"
输出: true
示例 2:
输入: "race a car"
输出: false
思路一: 用正则提取字母和数字字符, 在取反比较
思路二: 双指针
思路一:
def isPalindrome(self, s: str) -> bool:
tmp = re.sub(r"[^A-Za-z0-9]","", s).lower()
return tmp == tmp[::-1]
java
class Solution {
public boolean isPalindrome(String s) {
String tmp = s.replaceAll("[^A-Za-z0-9]", "").toLowerCase();
String rev_tmp = new StringBuffer(tmp).reverse().toString();
return tmp.equals(rev_tmp);
}
}
思路二:
def isPalindrome(self, s: str) -> bool:
n = len(s)
left = 0
right = n - 1
while left < right:
while left < right and not s[left].isalnum():
left += 1
while left < right and not s[right].isalnum():
right -= 1
if s[left].lower() != s[right].lower():
return False
left += 1
right -= 1
return True
java
class Solution {
public boolean isPalindrome(String s) {
char[] c = s.toCharArray();
int left = 0;
int right = c.length - 1;
while (left < right) {
while (left < right && !Character.isLetterOrDigit(c[left])) left++;
while (left < right && !Character.isLetterOrDigit(c[right])) right--;
if (Character.toLowerCase(c[left]) != Character.toLowerCase(c[right])) return false;
left++;
right--;
}
return true;
}
}
标签:输入 python uri ems ase isl 大小写 char ror
原文地址:https://www.cnblogs.com/powercai/p/11172074.html