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Root-Cause Analysis and Fine Tuning for Run-time Quality Issues in Transboundary Services

机译:跨界服务运行时质量问题的根本原因分析和微调

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In order to solve the quality issues caused by the status change of the internal elements as well as the external environment while transboundary service system is running, this paper proposes a root-cause analysis and fine tuning method for the run-time quality issues of transboundary services. After receiving feedback on the run-time quality issues, this method first built a causal diagram model for root-cause analysis on the basis of a large amount of quality and capability data generated by the operation of transboundary service system, and then based on the constructed causal diagram model, locate the problematic quality/capability parameters by tracing back to the source of quality issues, and finally aiming at the problematic quality/capability configuration scheme, carry out fine tuning through the data mining method that combines data clustering with decision tree, so as to ensure the continuous and healthy operation of transboundary service system with the minimum tuning cost. Finally, the effectiveness and practicability of the method is verified through the case of the Rural taobao service.
机译:为了解决内部元素的状态变化和外部环境在跨界服务系统运行时造成的质量问题,本文提出了跨界运行时质量问题的根本原因分析和微调方法服务。在接收到运行时质量问题的反馈后,本方法首先为根本原因分析的原因图模型为基于跨界服务系统的操作而产生的大量质量和能力数据,然后基于构造的因果图模型,通过追溯到质量问题的源来定位有问题的质量/能力参数,最后瞄准有问题的质量/能力配置方案,通过与决策树的数据聚类结合的数据挖掘方法进行微调,以确保跨界服务系统的连续和健康运行,最小调整成本。最后,通过淘宝网农村服务的情况来验证该方法的有效性和实用性。

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