物流网络的混合性能分析

Falko Bause, P. Buchholz, M. Fischer, P. Kemper
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引用次数: 1

摘要

大型物流网络中的资源偶尔不可用或出现故障。这意味着可执行性成为物流网络定量分析的一个问题。故障和正常操作之间的不同时间尺度通常证明将可执行性模型分解为考虑资源故障和恢复的单个可用性模型和一系列性能模型(其单个实例依赖于资源状态)是合理的。在本文中,我们提出了一种在工作站网络上以分布式方式独立模拟一组性能模型的方法。我们建议通过最小化性能度量的置信区间来优化给定CPU时间总量下可实现的结果质量。这可以通过自适应分配CPU时间来模拟那些结果对置信区间宽度影响最大的模型。
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Hybrid performability analysis of logistic networks
Resources in large logistic networks are occasionally unavailable or malfunctioning. This implies that performability becomes an issue for quantitative analysis of logistic networks. Different time scales between failures and normal operation often justify the decomposition of a performability model into a single availability model that considers failures and recovery of resources and a family of performance models whose individual instances depend on the state of resources. In this paper, we present an approach that simulates a set of performance models independently and in a distributed manner on a network of workstations. We propose to optimize the achievable quality of results for a given total amount of CPU time by minimizing the confidence intervals for performability measures. This is possible by an adaptive assignment of CPU time to simulate those models whose results have the largest impact on the width of confidence intervals.
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