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A Taxonomy of Anomalies in Distributed Cloud Systems: The CRI-Model

机译:分布式云系统中的异常分类:CRI模型

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Anomaly Detection (AD) in distributed cloud systems is the process of identifying unexpected (i.e. anomalous) behaviour. Many approaches from machine learning to statistical methods exist to detect anomalous data instances. However, no generic solutions exist for identifying appropriate metrics for monitoring and choosing adequate detection approaches. In this paper, we present the CRI-Model (Change, Rupture, Impact), which is a taxonomy based on a study of anomaly types in the literatureand an analysis of system outages in major cloud and web-portal companies. The taxonomy can be used as an anlaysis-tool on identified anomalies to discover gaps in the AD state of a system or determine components most often affected by a particular anomaly type. While the dimensions of the taxonomy are fixed, the categories can be adapted to different domains. We show the applicability of the taxonomy to distributed cloud systems using a large dataset of anomaly reports from a software company. The adaptability is further shown for the production automation domain, as a first attempt to generalize the taxonomy to other distributed systems.
机译:分布式云系统中的异常检测(AD)是识别意外行为(即异常行为)的过程。存在从机器学习到统计方法的许多方法来检测异常数据实例。但是,不存在用于识别监视和选择适当检测方法的适当度量的通用解决方案。在本文中,我们介绍了CRI模型(变更,破裂,影响),它是基于文献中异常类型的研究以及对主要云和Web门户公司的系统故障进行分析的分类法。该分类法可用作已识别异常的分析工具,以发现系统AD状态中的缺口或确定最常受特定异常类型影响的组件。虽然分类法的维度是固定的,但是类别可以适应不同的领域。我们使用来自软件公司的大量异常报告数据集,展示了分类法对分布式云系统的适用性。进一步显示了针对生产自动化领域的适应性,这是将分类法推广到其他分布式系统的首次尝试。

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