时间复杂度O(n),空间复杂度O(1)
编写一个函数,以字符串作为输入,反转该字符串中的元音字母。
示例 1:
输入: "hello"
输出: "holle"
示例 2:
输入: "leetcode"
输出: "leotcede"
1、双指针,指针begin从前往后扫描字符串,如果找到元音字符且没与指针end充电,begin指着该元音字符且停止扫描,指针end开始从后往前扫描字符串,如果找到元音字符且没与指针begin重叠,end指着该元音字符且停止扫描;
2、如果begin不等于end,且两个元音字符不相同,则进行交换;
3、重复1、2直到两指针重叠或者指针begin在指针end后面。
class Solution {
public:
string reverseVowels(string s) {
if(s.length() == 0) return s;
int begin = 0;
int end = s.length() - 1;
while(begin < end){
while(s[begin] != ‘a‘ && s[begin] != ‘o‘
&& s[begin] != ‘e‘ && s[begin] != ‘i‘
&& s[begin] != ‘u‘ && s[begin] != ‘A‘ && s[begin] != ‘O‘
&& s[begin] != ‘E‘ && s[begin] != ‘I‘
&& s[begin] != ‘U‘ && begin < end) begin++;
while(s[end] != ‘a‘ && s[end] != ‘o‘
&& s[end] != ‘e‘ && s[end] != ‘i‘
&& s[end] != ‘u‘ && s[end] != ‘A‘ && s[end] != ‘O‘
&& s[end] != ‘E‘ && s[end] != ‘I‘
&& s[end] != ‘U‘ && begin < end) end--;
if(begin != end){
if(s[begin] != s[end]){
int save = s[begin];
s[begin] = s[end];
s[end] = save;
}
begin++;
end--;
}
}
return s;
}
};
原文:https://www.cnblogs.com/wasi-991017/p/12678534.html