leetcode 345. 反转字符串中的元音字母
作者:互联网
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"
提示:
元音字母不包含字母 "y" 。
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/reverse-vowels-of-a-string
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采用双指针,分别从前和后遍历字符串,遇到元音则交换,否则不交换。
public String reverseVowels(String s) {
if (s == null || s.length() < 2) {
return s;
}
char[] arr1 = s.toCharArray();
int length = s.length();
char[] arr2 = new char[length];
int st = 0;
int end = length - 1;
while (st <= end) {
char a = arr1[st];
char b = arr1[end];
boolean b1 = (a == 'a' || a == 'e' || a == 'i' || a == 'o' || a == 'u'
|| a == 'A' || a == 'E' || a == 'I' || a == 'O' || a == 'U');
boolean b2 = (b == 'a' || b == 'e' || b == 'i' || b == 'o' || b == 'u'
|| b == 'A' || b == 'E' || b == 'I' || b == 'O' || b == 'U');
if (b1 && b2) {
arr2[st] = arr1[end];
arr2[end] = arr1[st];
st++;
end--;
}
if (!b1) {
arr2[st] = arr1[st];
st++;
}
if (!b2) {
arr2[end] = arr1[end];
end--;
}
}
return String.valueOf(arr2);
}
写的有点繁冗,不过事件复杂的还可以。
标签:end,st,345,length,arr2,arr1,元音,leetcode 来源: https://www.cnblogs.com/wangzaiguli/p/14669166.html