Stochastic-Based Robust Dynamic Resource Allocation in a Heterogeneous Computing System

Jay Smith, E. Chong, A. A. Maciejewski, H. Siegel
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引用次数: 25

Abstract

This research investigates the problem of robust dynamic resource allocation for heterogeneous distributed computing systems operating under imposed constraints. Often, such systems are expected to function in an environment where uncertainty in system parameters is common. In such an environment, the amount of processing required to complete an application may fluctuate substantially. Determining a resource allocation that accounts for this uncertainty---in a way that can provide a probability that a given level of service is achieved---is an important area of research. We define a mathematical model of stochastic robustness appropriate for a dynamic environment that can be used during resource allocation to aid heuristic decision making. In addition, we design a novel technique for maximizing stochastic robustness in this environment. Our performance results for this technique are compared with several well known resource allocation techniques in a simulated environment that models a heterogeneous distributed computing system.
异构计算系统中基于随机的鲁棒动态资源分配
本文研究了在约束条件下运行的异构分布式计算系统的鲁棒动态资源分配问题。通常,这样的系统被期望在系统参数不确定的环境中工作。在这样的环境中,完成应用程序所需的处理量可能波动很大。确定考虑这种不确定性的资源分配——以一种能够提供达到给定服务水平的可能性的方式——是一个重要的研究领域。我们定义了一个适合动态环境的随机鲁棒性数学模型,可以在资源分配过程中使用,以帮助启发式决策。此外,我们设计了一种新的技术来最大化这种环境下的随机鲁棒性。在模拟异构分布式计算系统的环境中,我们将该技术的性能结果与几种知名的资源分配技术进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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