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Scheduling Precedence Constrained Stochastic Tasks on Heterogeneous Cluster Systems

机译:异类集群系统中优先约束随机任务的调度

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Generally, a parallel application consists of precedence constrained stochastic tasks, where task processing times and intertask communication times are random variables following certain probability distributions. Scheduling such precedence constrained stochastic tasks with communication times on a heterogeneous cluster system with processors of different computing capabilities to minimize a parallel application’s expected completion time is an important but very difficult problem in parallel and distributed computing. In this paper, we present a model of scheduling stochastic parallel applications on heterogeneous cluster systems. We discuss stochastic scheduling attributes and methods to deal with various random variables in scheduling stochastic tasks. We prove that the expected makespan of scheduling stochastic tasks is greater than or equal to the makespan of scheduling deterministic tasks, where all processing times and communication times are replaced by their expected values. To solve the problem of scheduling precedence constrained stochastic tasks efficiently and effectively, we propose a stochastic dynamic level scheduling (SDLS) algorithm, which is based on stochastic bottom levels and stochastic dynamic levels. Our rigorous performance evaluation results clearly demonstrate that the proposed stochastic task scheduling algorithm significantly outperforms existing algorithms in terms of makespan, speedup, and makespan standard deviation.
机译:通常,并行应用程序由优先级受限的随机任务组成,其中任务处理时间和任务间通信时间是遵循一定概率分布的随机变量。在具有不同计算能力的处理器的异构集群系统上,通过通信时间安排这些优先级约束的随机任务,以最大程度地减少并行应用程序的预期完成时间,这在并行和分布式计算中是一个重要但非常困难的问题。在本文中,我们提出了一种在异构集群系统上调度随机并行应用程序的模型。我们讨论了随机调度属性和方法,以处理调度随机任务中的各种随机变量。我们证明,调度随机任务的预期有效期大于或等于调度确定性任务的有效期,在此确定性任务中,所有处理时间和通信时间均替换为其预期值。为了有效,有效地解决调度优先级受限的随机任务的问题,提出了一种基于动态最低水平和随机动态水平的随机动态水平调度算法。我们严格的性能评估结果清楚地表明,所提出的随机任务调度算法在有效期,加速和有效期标准差方面明显优于现有算法。

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