2432. The Employee That Worked on the Longest Task
Description
There are n
employees, each with a unique id from 0
to n - 1
.
You are given a 2D integer array logs
where logs[i] = [idi, leaveTimei]
where:
idi
is the id of the employee that worked on theith
task, andleaveTimei
is the time at which the employee finished theith
task. All the valuesleaveTimei
are unique.
Note that the ith
task starts the moment right after the (i - 1)th
task ends, and the 0th
task starts at time 0
.
Return the id of the employee that worked the task with the longest time. If there is a tie between two or more employees, return the smallest id among them.
Example 1:
Input: n = 10, logs = [[0,3],[2,5],[0,9],[1,15]] Output: 1 Explanation: Task 0 started at 0 and ended at 3 with 3 units of times. Task 1 started at 3 and ended at 5 with 2 units of times. Task 2 started at 5 and ended at 9 with 4 units of times. Task 3 started at 9 and ended at 15 with 6 units of times. The task with the longest time is task 3 and the employee with id 1 is the one that worked on it, so we return 1.
Example 2:
Input: n = 26, logs = [[1,1],[3,7],[2,12],[7,17]] Output: 3 Explanation: Task 0 started at 0 and ended at 1 with 1 unit of times. Task 1 started at 1 and ended at 7 with 6 units of times. Task 2 started at 7 and ended at 12 with 5 units of times. Task 3 started at 12 and ended at 17 with 5 units of times. The tasks with the longest time is task 1. The employees that worked on it is 3, so we return 3.
Example 3:
Input: n = 2, logs = [[0,10],[1,20]] Output: 0 Explanation: Task 0 started at 0 and ended at 10 with 10 units of times. Task 1 started at 10 and ended at 20 with 10 units of times. The tasks with the longest time are tasks 0 and 1. The employees that worked on them are 0 and 1, so we return the smallest id 0.
Constraints:
2 <= n <= 500
1 <= logs.length <= 500
logs[i].length == 2
0 <= idi <= n - 1
1 <= leaveTimei <= 500
idi != idi+1
leaveTimei
are sorted in a strictly increasing order.
Solution
the-employee-that-worked-on-the-longest-task.py
class Solution:
def hardestWorker(self, n: int, logs: List[List[int]]) -> int:
longest = -inf
res = -1
prev = 0
for eID, d in logs:
duration = d - prev
if duration > longest:
longest = duration
res = eID
elif duration == longest and eID < res:
res = eID
prev = d
return res