You are given n tasks labeled from 0 to n - 1 represented by a 2D integer array tasks, where tasks[i] = [enqueueTimei, processingTimei] means that the ith task will be available to process at enqueueTimei and will take processingTimei to finish processing.
You have a single-threaded CPU that can process at most one task at a time and will act in the following way:
- If the CPU is idle and there are no available tasks to process, the CPU remains idle.
- If the CPU is idle and there are available tasks, the CPU will choose the one with the shortest processing time. If multiple tasks have the same shortest processing time, it will choose the task with the smallest index.
- Once a task is started, the CPU will process the entire task without stopping.
- The CPU can finish a task then start a new one instantly.
Return the order in which the CPU will process the tasks.
Example 1:
Input: tasks = [[1,2],[2,4],[3,2],[4,1]]
Output: [0,2,3,1]
Explanation: The events go as follows:
- At time = 1, task 0 is available to process. Available tasks = {0}.
- Also at time = 1, the idle CPU starts processing task 0. Available tasks = {}.
- At time = 2, task 1 is available to process. Available tasks = {1}.
- At time = 3, task 2 is available to process. Available tasks = {1, 2}.
- Also at time = 3, the CPU finishes task 0 and starts processing task 2 as it is the shortest. Available tasks = {1}.
- At time = 4, task 3 is available to process. Available tasks = {1, 3}.
- At time = 5, the CPU finishes task 2 and starts processing task 3 as it is the shortest. Available tasks = {1}.
- At time = 6, the CPU finishes task 3 and starts processing task 1. Available tasks = {}.
- At time = 10, the CPU finishes task 1 and becomes idle.
Example 2:
Input: tasks = [[7,10],[7,12],[7,5],[7,4],[7,2]]
Output: [4,3,2,0,1]
Explanation: The events go as follows:
- At time = 7, all the tasks become available. Available tasks = {0,1,2,3,4}.
- Also at time = 7, the idle CPU starts processing task 4. Available tasks = {0,1,2,3}.
- At time = 9, the CPU finishes task 4 and starts processing task 3. Available tasks = {0,1,2}.
- At time = 13, the CPU finishes task 3 and starts processing task 2. Available tasks = {0,1}.
- At time = 18, the CPU finishes task 2 and starts processing task 0. Available tasks = {1}.
- At time = 28, the CPU finishes task 0 and starts processing task 1. Available tasks = {}.
- At time = 40, the CPU finishes task 1 and becomes idle.
Constraints:
tasks.length == n1 <= n <= 1051 <= enqueueTimei, processingTimei <= 109
Related Topics:
Heap
Use a min-heap pq to keep track of available tasks, sorted first by processing time then by index.
Sort the input array in ascending order of enqueue time.
Let time be the current time. When time >= A[i][0], keep pushing A[i] into the min-heap.
Then we pop a task from the min-heap and handle it. Increase the time by the processing time of this task and add its index to the answer.
// OJ: https://leetcode.com/problems/single-threaded-cpu/
// Author: github.com/lzl124631x
// Time: O(NlogN)
// Space: O(N)
class Solution {
typedef pair<int, int> T; // processing time, index
public:
vector<int> getOrder(vector<vector<int>>& A) {
priority_queue<T, vector<T>, greater<>> pq; // min heap of tasks, sorted first by processing time then by index.
long N = A.size(), time = 0, i = 0; // `time` is the current time, `i` is the read pointer
for (int i = 0; i < N; ++i) A[i].push_back(i); // append the index to each task
sort(begin(A), end(A)); // sort the input array so that we can take the tasks of small enqueueTime first
vector<int> ans;
while (i < N || pq.size()) { // stop the loop when we exhausted the input array and the tasks in the heap.
if (pq.empty()) {
time = max(time, (long)A[i][0]); // nothing in the heap? try updating the current time using the processing time of the next task in array
}
while (i < N && time >= A[i][0]) { // push all the tasks in the array whose enqueueTime <= currentTime into the heap
pq.emplace(A[i][1], A[i][2]);
++i;
}
auto [pro, index] = pq.top();
pq.pop();
time += pro; // handle this task and increase the current time by the processingTime
ans.push_back(index);
}
return ans;
}
};Similar to 1353. Maximum Number of Events That Can Be Attended (Medium)