LeetCode 2365. Task Scheduler II
原题链接在这里:https://leetcode.com/problems/task-scheduler-ii/
题目:
You are given a 0-indexed array of positive integers tasks, representing tasks that need to be completed in order, where tasks[i] represents the type of the ith task.
You are also given a positive integer space, which represents the minimum number of days that must pass after the completion of a task before another task of the same type can be performed.
Each day, until all tasks have been completed, you must either:
- Complete the next task from
tasks, or - Take a break.
Return the minimum number of days needed to complete all tasks.
Example 1:
Input: tasks = [1,2,1,2,3,1], space = 3 Output: 9 Explanation: One way to complete all tasks in 9 days is as follows: Day 1: Complete the 0th task. Day 2: Complete the 1st task. Day 3: Take a break. Day 4: Take a break. Day 5: Complete the 2nd task. Day 6: Complete the 3rd task. Day 7: Take a break. Day 8: Complete the 4th task. Day 9: Complete the 5th task. It can be shown that the tasks cannot be completed in less than 9 days.
Example 2:
Input: tasks = [5,8,8,5], space = 2 Output: 6 Explanation: One way to complete all tasks in 6 days is as follows: Day 1: Complete the 0th task. Day 2: Complete the 1st task. Day 3: Take a break. Day 4: Take a break. Day 5: Complete the 2nd task. Day 6: Complete the 3rd task. It can be shown that the tasks cannot be completed in less than 6 days.
Constraints:
1 <= tasks.length <= 1051 <= tasks[i] <= 1091 <= space <= tasks.length
题解:
Have a map to record the next available date we could do the task. The key is the task.
Get the maximum of next available date and res + 1. Res + 1 is the next day, maybe current day is 8, the next day is 9 is already larger than next available date we could do this task again.
Upate the map with res + space + 1 is the next available date.
Time Complexity: O(n). n = tasks.length.
Space: O(n).
AC Java:
1 class Solution { 2 public long taskSchedulerII(int[] tasks, int space) { 3 long res = 0L; 4 HashMap<Integer, Long> nextTime = new HashMap<>(); 5 for(int t : tasks){ 6 res = Math.max(res + 1, nextTime.getOrDefault(t, 0L)); 7 nextTime.put(t, res + space + 1); 8 } 9 10 return res; 11 } 12 }
