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Performance Analysis of a Dynamic Architecture for Reconfiguration of Web Servers Clusters

机译:用于重新配置Web服务器群集的动态体系结构的性能分析

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The administration of clusters is an exhausting job. Particularly, allocating the resources of the clusters by hand can easily become unmanageable because the processing requirements can change very quickly in a dynamic environment such as the Internet. A solution to solve this problem is to use a dynamic architecture for self-reconfiguration of the clusters. In a previous work, we have proposed the DARC architecture, an agent-based architecture that can perform an automatic reconfiguration to adapt itself to the current needs. In this paper, we formally model our architecture using SPE techniques. These models are validated by comparing the analytical results with results obtained through experimental evaluation. The models obtained can thus be used to evaluate DARC in different environments without the hassle of a time-consuming experimental evaluation. For example, in this paper we have used our models to compare the strategy of load balancing without self-reconfiguration with an approach with self-reconfiguration. This paper also shows that the use of Generalized Stochastic Petri Nets (GSPN) is suitable to analyze complex performance problems in the dynamic reconfiguration domain.
机译:集群管理是一项艰巨的工作。特别是,手工分配群集的资源很容易变得难以管理,因为在动态环境(例如Internet)中处理要求可能会很快改变。解决此问题的一种方法是使用动态体系结构对群集进行自我重新配置。在先前的工作中,我们提出了DARC体系结构,它是一种基于代理的体系结构,可以执行自动重新配置以使其自身适应当前需求。在本文中,我们使用SPE技术对体系结构进行正式建模。通过将分析结果与通过实验评估获得的结果进行比较来验证这些模型。因此,获得的模型可用于评估不同环境中的DARC,而无需进行耗时的实验评估。例如,在本文中,我们使用我们的模型来比较没有自我重新配置的负载均衡策略和具有自我重新配置的方法。本文还表明,使用广义随机Petri网(GSPN)可以分析动态重新配置域中的复杂性能问题。

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