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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Low-cost static performance prediction of parallel stochastic task compositions
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Low-cost static performance prediction of parallel stochastic task compositions

机译:并行随机任务组合的低成本静态性能预测

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摘要

Current analytic solutions to the execution time distribution of a parallel composition of tasks having stochastic execution times are computationally complex, except for a limited number of distributions. In this paper, we present an analytical solution based on approximating execution time distributions in terms of the first four statistical moments. This low-cost approach allows the parallel execution time distribution to be approximated at ultra-low solution complexity for a wide range of execution time distributions. The accuracy of our method is experimentally evaluated for synthetic distributions as well as for task execution time distributions found in real parallel programs and kernels (NAS-EP, SSSP, APSP, Splash2-Barnes, PSRS, and WATOR). Our experiments show that the prediction error of the mean value of the parallel execution time for N-ary parallel composition is in the order of percents, provided the task execution time distributions are sufficiently independent and unimodal.
机译:对于具有随机执行时间的任务的并行组成的执行时间分布的当前解析解决方案在计算上很复杂,除了数量有限的分布。在本文中,我们提出了一种基于前四个统计时刻的近似执行时间分布的解析解决方案。这种低成本的方法允许在广泛的执行时间分布范围内以超低解决方案复杂度近似并行执行时间分布。我们针对合成分布以及实​​际并行程序和内核(NAS-EP,SSSP,APSP,Splash2-Barnes,PSRS和WATOR)中发现的任务执行时间分布,通过实验评估了我们方法的准确性。我们的实验表明,如果任务执行时间分布具有足够的独立性和单峰性,则对于N元并行组合,并行执行时间平均值的预测误差约为百分数。

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