题目1
力扣 344题, 反转字符串
编写一个函数,其作用是将输出的字符串反转过去。输出字符串以字符数组 s 的模式给出。不要给另外的数组调配额定的空间,你必须原地批改输出数组、应用 O(1) 的额定空间解决这一问题。 示例 1:输出:s = ["h","e","l","l","o"]输入:["o","l","l","e","h"]示例 2:输出:s = ["H","a","n","n","a","h"]输入:["h","a","n","n","a","H"]起源:力扣(LeetCode)链接:https://leetcode.cn/problems/reverse-string著作权归领扣网络所有。商业转载请分割官网受权,非商业转载请注明出处。解法:双指针
class Solution { public void reverseString(char[] s) { int left = 0; int right = s.length-1; while(left < right){ char t = s[left]; s[left] = s[right]; s[right] = t; left++; right--; } }}题目2
力扣 541题 反转字符串II
给定一个字符串 s 和一个整数 k,从字符串结尾算起,每计数至 2k 个字符,就反转这 2k 字符中的前 k 个字符。如果残余字符少于 k 个,则将残余字符全副反转。如果残余字符小于 2k 但大于或等于 k 个,则反转前 k 个字符,其余字符放弃原样。 示例 1:输出:s = "abcdefg", k = 2输入:"bacdfeg"示例 2:输出:s = "abcd", k = 2输入:"bacd"起源:力扣(LeetCode)链接:https://leetcode.cn/problems/reverse-string-ii著作权归领扣网络所有。商业转载请分割官网受权,非商业转载请注明出处。解法:双指针
class Solution { public String reverseStr(String s, int k) { char[] chars = s.toCharArray(); int length = chars.length; for(int i = 0; i*k < length; i++){ if(i%2 == 0){ int end = i*k+k-1; if (i*k+k-1 >= length){ end = length-1; } reverseArray(chars, i*k, end); } } return new String(chars); } // 反转数组区间 public void reverseArray(char[] chars, int start, int end) { int offset = 0; for(int i = start; i <= (start+end)/2; i++){ char tmp = chars[start + offset]; chars[start + offset] = chars[end - offset]; chars[end - offset] = tmp; offset++; } }}