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Statistical prediction of task execution times through analytic benchmarking for scheduling in a heterogeneous environment

机译:通过分析基准测试对异构环境中的计划进行任务执行时间的统计预测

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摘要

In this paper, a method for estimating task execution times is presented in order to facilitate dynamic scheduling in a heterogeneous metacomputing environment. Execution time is treated as a random variable and is statistically estimated from past observations. This method predicts the execution time as a function of several parameters of the input data and does not require any direct information about the algorithms used by the tasks or the architecture of the machines. Techniques based upon the concept of analytic benchmarking/code profiling are used to characterize the performance differences between machines, allowing observations from dissimilar machines to be used when making a prediction. Experimental results are presented which use actual execution time data gathered from 16 heterogeneous machines.
机译:在本文中,提出了一种估计任务执行时间的方法,以促进异构元计算环境中的动态调度。执行时间被视为随机变量,并根据过去的观察进行统计估算。该方法根据输入数据的多个参数来预测执行时间,并且不需要有关任务或机器体系结构使用的算​​法的任何直接信息。基于分析基准测试/代码配置文件的概念的技术用于表征机器之间的性能差异,从而允许在进行预测时使用来自不同机器的观察结果。给出了使用从16个异构机器收集的实际执行时间数据的实验结果。

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