Implementing slot-based task-splitting multiprocessor scheduling

Paulo G. Sousa, Björn Andersson, E. Tovar
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引用次数: 18

Abstract

Consider the problem of scheduling a set of sporadic tasks on a multiprocessor system to meet deadlines using a task-splitting scheduling algorithm. Task-splitting (also called semi-partitioning) scheduling algorithms assign most tasks to just one processor but a few tasks are assigned to two or more processors, and they are dispatched in a way that ensures that a task never executes on two or more processors simultaneously. A particular type of task-splitting algorithms, called slot-based task-splitting dispatching, is of particular interest because of its ability to schedule tasks with high processor utilizations. Unfortunately, no slot-based task-splitting algorithm has been implemented in a real operating system so far. In this paper we discuss and propose some modifications to the slot-based task-splitting algorithm driven by implementation concerns, and we report the first implementation of this family of algorithms in a real operating system running Linux kernel version 2.6.34. We have also conducted an extensive range of experiments on a 4-core multicore desktop PC running task-sets with utilizations of up to 88%. The results show that the behavior of our implementation is in line with the theoretical framework behind it.
实现基于插槽的任务分割多处理器调度
考虑使用任务分割调度算法调度多处理器系统上的一组零星任务以满足最后期限的问题。任务分割(也称为半分区)调度算法将大多数任务分配给一个处理器,但少数任务分配给两个或多个处理器,并且它们的调度方式确保任务永远不会同时在两个或多个处理器上执行。一种特殊类型的任务分割算法,称为基于插槽的任务分割调度,因为它能够调度具有高处理器利用率的任务,所以特别令人感兴趣。不幸的是,到目前为止,还没有在实际操作系统中实现基于插槽的任务分割算法。在本文中,我们讨论并提出了一些基于实现问题的基于槽的任务分割算法的修改,并报告了该算法族在运行Linux内核版本2.6.34的实际操作系统中的首次实现。我们还在运行任务集的4核多核桌面PC上进行了广泛的实验,其利用率高达88%。结果表明,我们的实现行为符合其背后的理论框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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