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Measurement and optimization of robust stability of multiclass queueing networks: Applications in dynamic supply chains

机译:测量和优化多类排队网络的鲁棒稳定性:在动态供应链中的应用

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Multiclass queueing networks are an essential tool for modeling and analyzing complex supply chains. Roughly speaking, stability of these networks implies that the total number of customers/jobs in the network remains bounded over time. In this context robustness characterizes the ability of a multiclass queueing network to remain stable, if the expected values of the interarrival and service times distributions are subject to uncertain shifts. A powerful starting point for the stability analysis of multiclass queueing networks is the associated fluid network. Based on the fluid network analysis we present a measure to quantify the robustness, which is indicated by a single number. This number will be called the stability radius. It represents the magnitude of the smallest shift of the expected value of the interarrival and/or service times distributions so that the associated fluid network looses the property of stability. The stability radius is a worst case measure and is a conceptual adaptation from the dynamical systems literature. Moreover, we provide a characterization of the shifts that destabilize the network. Based on these results, we formulate a mathematical program that minimizes the required network capacity, while ensuring a desired level of robustness towards shifts of the expected values of the interarrival times distributions. This approach provides a new view on long-term robust production capacity allocation in supply chains. The capabilities of our method are demonstrated using a real world supply chain.
机译:多类排队网络是建模和分析复杂供应链的重要工具。粗略地讲,这些网络的稳定性意味着网络中的客户/职位总数随时间推移仍然有限。在这种情况下,鲁棒性表征了多类排队网络保持稳定的能力,如果到达间隔和服务时间分布的期望值受到不确定的变化的影响。相关类的流体网络是进行多类排队网络稳定性分析的强大起点。基于流体网络分析,我们提出了一种量化鲁棒性的措施,该措施由单个数字表示。此数字称为稳定半径。它代表着间隔和/或服务时间分布的期望值的最小偏移的大小,因此关联的流体网络失去了稳定性。稳定性半径是最坏情况下的度量,并且是动力学系统文献中的概念性修改。此外,我们提供了使网络不稳定的变化的特征。基于这些结果,我们制定了一个数学程序,该程序可以最小化所需的网络容量,同时确保在到达间隔时间分布的期望值的方向上具有所需的鲁棒性。这种方法为供应链中长期稳定的产能分配提供了新的思路。我们的方法的功能已通过实际的供应链进行了演示。

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