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RELATIVE DENSITY-BASED CLUSTERING AND ANOMALY DETECTION SYSTEM

机译:基于相对密度的聚类和异常检测系统

摘要

Examples provide a system for detecting anomalies in a dataset. The system includes one or more processors and a memory storing the dataset. The one or more processors are programmed to identify a first set of data points in a cluster, identify a second set of data points outside of the cluster as noisy data points, and determine whether each of the noisy data points is an anomaly by: determining a distance between the noisy data point and other data points in the dataset, ranking the distances between the noisy data point and the other data points, and applying a weight to each of the ranked distances to determine an outlier value for the noisy data point. When the outlier value for the noisy data point exceeds a threshold, the noisy data point is identified as an anomaly, and result is displayed in a user interface.
机译:示例提供了一种用于检测数据集中异常的系统。该系统包括一个或多个处理器和存储数据集的存储器。一个或多个处理器被编程为标识集群中的第一组数据点,将集群外部的第二组数据点标识为噪声数据点,并通过以下方法确定每个噪声数据点是否为异常:噪声数据点与数据集中其他数据点之间的距离,对噪声数据点与其他数据点之间的距离进行排名,并对每个排名距离施加权重,以确定噪声数据点的离群值。当噪声数据点的离群值超过阈值时,将噪声数据点识别为异常,并将结果显示在用户界面中。

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