标签:最小 you sum res may 位置 从右到左 操作 class
Given a time represented in the format "HH:MM", form the next closest time by reusing the current digits. There is no limit on how many times a digit can be reused.
You may assume the given input string is always valid. For example, "01:34", "12:09" are all valid. "1:34", "12:9" are all invalid.
Example 1:
Input: "19:34"
Output: "19:39"
Explanation: The next closest time choosing from digits 1, 9, 3, 4, is 19:39, which occurs 5 minutes later. It is not 19:33, because this occurs 23 hours and 59 minutes later.
Example 2:
Input: "23:59"
Output: "22:22"
Explanation: The next closest time choosing from digits 2, 3, 5, 9, is 22:22. It may be assumed that the returned time is next day‘s time since it is smaller than the input time numerically.
1 public class Test { 2 public String nextClosestTime(String time) { 3 char[] res = time.toCharArray(); 4 char[] digits = new char[] { res[0], res[1], res[3], res[4] }; 5 Arrays.sort(digits); 6 7 // 从右到左对res进行操作,只要有当前最小单位时间的替换,返回替换后的时间 8 res[4] = findNext(digits, res[4], ‘9‘); 9 if (res[4] > time.charAt(4)) return String.valueOf(res); 10 11 res[3] = findNext(digits, res[3], ‘5‘); 12 if (res[3] > time.charAt(3)) return String.valueOf(res); 13 14 res[1] = res[0] == ‘2‘ ? findNext(digits, res[1], ‘3‘) : findNext(digits, res[1], ‘9‘); 15 if (res[1] > time.charAt(1)) return String.valueOf(res); 16 17 res[0] = findNext(digits, res[0], ‘2‘); 18 return String.valueOf(res); 19 } 20 21 private char findNext(char[] digits, char cur, char upper) { 22 if (cur == upper) return digits[0]; 23 // 找到cur的位置,然后加1得到下一个位置 24 int pos = Arrays.binarySearch(digits, cur) + 1; 25 // 如果下一个位置的数还是原来的数,或者超过了上限数,前进到再下一个 26 while (pos < 4 && (digits[pos] == cur || digits[pos] > upper)) { 27 pos++; 28 } 29 return pos == 4 ? digits[0] : digits[pos]; 30 } 31 }
标签:最小 you sum res may 位置 从右到左 操作 class
原文地址:https://www.cnblogs.com/beiyeqingteng/p/10934970.html