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Java-based LeetCode algorithm problem solutions, regularly updated

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1834\. Single-Threaded CPU

Medium

You are given `n` tasks labeled from `0` to `n - 1` represented by a 2D integer array `tasks`, where tasks[i] = [enqueueTime_i, processingTime_i] means that the i^th task will be available to process at enqueueTime_i and will take processingTime_i 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 == n`
*   1 <= n <= 10⁵
*   1 <= enqueueTime_i, processingTime_i <= 10⁹