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Server Visualization by User Behaviour Model using a Data Mining Technique - A Preliminary Study

机译:用户行为模型使用数据挖掘技术进行服务器可视化 - 初步研究

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Server virtualization is the masking of server resources, including the number and identity of individual physical servers, processors, and operating systems, from server users. However, the problem of tuning dynamic resource allocation is a novelty. Managing heterogeneous workloads running within virtual machines is an interesting and challenging topic of server virtualization. This research applied association rule discovery, which is one of the data mining techniques to predict level of user access. The results illustrate that performance of the predictive model for a proxy server is 86.86%. The performance of the predictive model for a web server is 87.18%. Additionally, user behaviors for proxy and web servers are visualized. The results suggest that user behaviors are different in term of workload, day and time usage. This preliminary study may be an approach to improve management of data centers running heterogeneous workloads using server virtualization.
机译:服务器虚拟化是服务器资源的屏蔽,包括来自服务器用户的单个物理服务器,处理器和操作系统的数量和标识。然而,调整动态资源分配的问题是一种新颖性。管理虚拟机中运行的异构工作负载是服务器虚拟化的有趣和具有挑战性的主题。这项研究应用了关联规则发现,这是预测用户访问级别的数据挖掘技术之一。结果说明了代理服务器的预测模型的性能为86.86%。 Web服务器的预测模型的性能为87.18%。此外,可视化代理和Web服务器的用户行为。结果表明,工作量,日期和时间使用期限的用户行为不同。这项初步研究可能是一种方法来改善使用服务器虚拟化运行异构工作负载的数据中心管理的方法。

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