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Experimental Analysis of Timing Validation Methods for Distributed Real-Time Systems

机译:分布式实时系统时序验证方法的实验分析

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Scheduling jobs dynamically on processors is likely to achieve better performance in multiprocessor and distributed real-time systems. Exhaustive methods for determining whether all jobs complete by their deadlines, in systems that use modern priority-driven scheduling strategics, are often infcasible or unreliable since the execution time of each job may vary. We previously published research results on finding worst-case bounds and efficient algorithms for validating systems in which independent jobs have arbitrary release times and deadlines, and are scheduled on processors dynamically in a priority-driven manner. An efficient method has been proposed to determine how late the completion times of jobs can he in dynamic systems where the jobs arc preemptable and nonmigratable. This paper further presents the performance characteristics of the proposed methods, and shows its soundness by providing extensive simulation results. The worst-case completion times of jobs obtained with the proposed methods are compared with the values by simulations under different workload characteristics. The simulation results show that the proposed algorithm performs considerably well for diverse workloads. Considering the previous work showed the unlikelihood of finding tighter bounds than the one given in the paper, the simulation results indicate that the proposed methods effectively constitute a theoretical basis needed for a comprehensive validation strategy that is capable of dealing with dynamic distributed real-time systems.
机译:在处理器上动态调度作业可能会在多处理器和分布式实时系统中获得更好的性能。在使用现代优先级驱动的调度策略的系统中,用于确定所有作业是否按时限完成的详尽方法通常是不可行或不可靠的,因为每个作业的执行时间可能会有所不同。我们之前发表过有关寻找最坏情况范围和有效算法的研究结果,该算法用于验证系统,其中独立的作业具有任意的发布时间和截止日期,并以优先级驱动的方式动态地安排在处理器上。已经提出了一种有效的方法来确定在作业可以抢占和不可迁移的动态系统中作业的完成时间有多晚。本文进一步介绍了所提出方法的性能特征,并通过提供广泛的仿真结果显示了其合理性。在不同的工作量特征下,通过仿真将所提方法获得的最坏情况下的完成时间与数值进行比较。仿真结果表明,该算法在不同的工作量下表现良好。考虑到先前的工作表明不可能找到比本文给出的更严格的界限,模拟结果表明,所提出的方法有效地构成了能够处理动态分布式实时系统的全面验证策略所需的理论基础。 。

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