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Anomaly Detection Based on Confidence Intervals Using SOM with an Application to Health Monitoring

机译:基于使用SOM的置信区间具有健康监测的置信区间的异常检测

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We develop an application of SOM for the task of anomaly detection and visualization. To remove the effect of exogenous independent variables, we use a correction model which is more accurate than the usual one, since we apply different linear models in each cluster of context. We do not assume any particular probability distribution of the data and the detection method is based on the distance of new data to the Kohonen map learned with corrected healthy data. We apply the proposed method to the detection of aircraft engine anomalies.
机译:我们开发SOM的应用,以便对异常检测和可视化的任务。为了消除外源独立变量的效果,我们使用比通常的更准确的校正模型,因为我们在每个上下文中应用不同的线性模型。我们不假设数据的任何特定概率分布和检测方法基于新数据与纠正的健康数据学习的Kohonen地图的距离。我们将建议的方法应用于检测飞机发动机异常。

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