编写一个函数,其作用是将输入的字符串反转过来。输入字符串以字符数组 char[] 的形式给出。
不要给另外的数组分配额外的空间,你必须原地修改输入数组、使用 O(1) 的额外空间解决这一问题。
你可以假设数组中的所有字符都是 ASCII 码表中的可打印字符。
示例 1:
输入:["h","e","l","l","o"]
输出:["o","l","l","e","h"]
示例 2:
输入:["H","a","n","n","a","h"]
输出:["h","a","n","n","a","H"]
class Solution {
public void reverseString(char[] s) {
int n = s.length;
for (int left = 0, right = n - 1; left < right; ++left, --right) {
char tmp = s[left];
s[left] = s[right];
s[right] = tmp;
}
}
}
给定一个字符串,你需要反转字符串中每个单词的字符顺序,同时仍保留空格和单词的初始顺序。
示例:
输入:"Let‘s take LeetCode contest"
输出:"s‘teL ekat edoCteeL tsetnoc"
提示:
class Solution {
public String reverseWords(String s) {
StringBuffer ret = new StringBuffer();
int length = s.length();
int i = 0;
while (i < length) {
int start = i;
while (i < length && s.charAt(i) != ‘ ‘) {
i++;
}
for (int p = start; p < i; p++) {
ret.append(s.charAt(start + i - 1 - p));
}
while (i < length && s.charAt(i) == ‘ ‘) {
i++;
ret.append(‘ ‘);
}
}
return ret.toString();
}
}
Leetcode Task17:完成344、577题目并打卡
原文:https://www.cnblogs.com/Vincy-BLOG/p/14339327.html