首页> 外文会议>2011 23rd Euromicro Conference on Real-Time Systems >Scalable Utility Aware Scheduling Heuristics for Real-time Tasks with Stochastic Non-preemptive Execution Intervals
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Scalable Utility Aware Scheduling Heuristics for Real-time Tasks with Stochastic Non-preemptive Execution Intervals

机译:具有随机非抢先执行时间间隔的实时任务的可扩展实用程序感知启发式调度

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Time utility functions can describe the complex timing constraints of real-time and cyber-physical systems. However, utility aware scheduling policy design is an open research problem. Previously we solved a Markov Decision Process formulation of the scheduling problem to derive value-optimal scheduling policies for systems with periodic real-time task sets and stochastic non-preemptive execution intervals. However, the complexity of computing solutions and their policy storage requirements necessitate the exploration of scalable solutions. In this paper we generalize the Utility Accrual Packet Scheduling Algorithm. We compare several heuristics to Markov Decision Process policy evaluation under soft and hard real-time conditions, different load conditions, and different classes of time utility functions. Based on these evaluations we present guidelines for which heuristics are best suited to particular scheduling criteria.
机译:时间效用函数可以描述实时和网络物理系统的复杂时序约束。但是,了解效用的调度策略设计是一个开放的研究问题。先前,我们解决了调度问题的马尔可夫决策过程公式,以得出具有周期性实时任务集和随机非抢先执行间隔的系统的价值最优调度策略。但是,计算解决方案的复杂性及其策略存储要求使得必须探索可扩展的解决方案。在本文中,我们归纳了效用应计分组调度算法。我们将几种启发式方法与软硬实时条件,不同负载条件以及不同时间效用函数类别下的马尔可夫决策过程策略评估进行了比较。基于这些评估,我们提供了最适合特定调度标准的启发式方法的指南。

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