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A Markov Chain Monte Carlo Approach to Cost Matrix Generation for Scheduling Performance Evaluation

机译:Markov链蒙特卡罗对调度绩效评估的成本矩阵生成方法

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In high performance computing, scheduling of tasks and allocation to machines is very critical especially when we are dealing with heterogeneous execution costs. Simulations can be performed with a large variety of environments and application models. However, this technique is sensitive to bias when it relies on random instances with an uncontrolled distribution. We use methods from the literature to provide formal guarantee on the distribution of the instance. In particular, it is desirable to ensure a uniform distribution among the instances with a given task and machine heterogeneity. In this article, we propose a method that generates instances (cost matrices) with a known distribution where tasks are scheduled on machines with heterogeneous execution costs.
机译:在高性能计算中,对机器的任务和分配的调度非常重要,特别是当我们处理异构执行成本时。可以用各种环境和应用模型进行仿真。然而,当依赖具有不受控制分布的随机实例依赖时,该技术对偏差敏感。我们使用文献中的方法来提供关于实例分布的正式保证。特别地,希望确保具有给定任务和机器异质性的情况下的均匀分布。在本文中,我们提出了一种生成实例(成本矩阵)的方法,该方法具有已知的分发,其中任务在具有异构执行成本的计算机上。

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