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A stochastic approach to estimating earliest start times of nodes for scheduling DAGs on heterogeneous distributed computing systems

机译:一种用于估计异构分布式计算系统上的DAG调度的节点的最早开始时间的随机方法

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Previously, DAG scheduling schemes used the mean (average) of computation or communication time in dealing with temporal heterogeneity. However, it is not optimal to consider only the means of computation and communication times in DAG scheduling on a temporally (and spatially) heterogeneous distributed computing system. In this paper, it is proposed that the second order moments of computation and communication times, such as the standard deviations, be taken into account in addition to their means, in scheduling “stochastic” DAGs. An effective scheduling approach which accurately estimates the earliest start time of each node and derives a schedule leading to a shorter average parallel execution time has been developed. Through an extensive computer simulation, it has been shown that a significant improvement (reduction) in the average parallel execution times of stochastic DAGs can be achieved by the proposed approach.
机译:以前,DAG调度方案使用计算或通信时间的平均值(平均值)来处理时间异质性。但是,在时间(和空间)异构分布式计算系统上DAG调度中仅考虑计算和通信时间的手段并不是最佳选择。在本文中,建议在调度“随机” DAG时,除考虑其平均值外,还应考虑计算和通信时间的二阶矩,例如标准偏差。已经开发出一种有效的调度方法,该方法可以准确地估计每个节点的最早开始时间并得出导致较短的平均并行执行时间的调度。通过广泛的计算机仿真,已经表明,通过所提出的方法,可以实现随机DAG的平均并行执行时间的显着改善(减少)。

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