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SERVICE REGRESSION DETECTION USING REAL-TIME ANOMALY DETECTION OF APPLICATION PERFORMANCE METRICS

机译:应用程序性能指标的实时异常检测的服务回归检测

摘要

The present system uses delegates installed in remote environments to called and transmit, to a remote manager, time series metric data (or data from which metrics can be determined) in real-time. The numerical time series data is persisted, and a learned representation is generated from the data, for example by discretization. The learned representation is then clustered, the clusters are compared to new data, anomalies are determined, and deviation scores are calculated for the anomalies. The derivation scores are compared to thresholds, and results are reported through, for example, a user interface, dashboard, and/or other mechanism.
机译:本系统使用安装在远程环境中的委托来实时调用时间序列度量数据(或可以从中确定度量的数据)并将其传输到远程管理器。数字时间序列数据将保留下来,并从数据中生成学习的表示形式,例如通过离散化。然后将学习的表示进行聚类,将聚类与新数据进行比较,确定异常,并为异常计算偏差分数。将派生分数与阈值进行比较,并通过例如用户界面,仪表板和/或其他机制报告结果。

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