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ANOMALY SELECTION USING DISTANCE METRIC-BASED DIVERSITY AND RELEVANCE

机译:基于距离度量的多样性和相关性的异常选择

摘要

In one embodiment, a device in a network receives a notification of a particular anomaly detected by a distributed learning agent in the network that executes a machine learning-based anomaly detector to analyze traffic in the network. The device computes one or more distance scores between the particular anomaly and one or more previously detected anomalies. The device also computes one or more relevance scores for the one or more previously detected anomalies. The device determines a reporting score for the particular anomaly based on the one or more distance scores and on the one or more relevance scores. The device reports the particular anomaly to a user interface based on the determined reporting score.
机译:在一个实施例中,网络中的设备接收由网络中的分布式学习代理检测到的特定异常的通知,该通知执行基于机器学习的异常检测器以分析网络中的流量。该设备计算特定异常与一个或多个先前检测到的异常之间的一个或多个距离得分。该设备还为一个或多个先前检测到的异常计算一个或多个相关性分数。设备基于一个或多个距离得分以及一个或多个相关性得分来确定针对特定异常的报告得分。设备基于所确定的报告分数将特定异常报告给用户界面。

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