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A novel fuzzy classification solution for fault diagnosis

机译:故障诊断的新型模糊分类解决方案

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摘要

This paper introduces a novel fuzzy classification methodology for fault diagnosis. The main advantages of the proposed fuzzy classifier are the high accuracy of defining the areas corresponding to different categories and the fine precision of discrimination inside overlapping areas. The fuzzy sets used by the classifier are built upon a similarity measure between the objects in the problem space. Another advantage of the classifier is its capability to handle either single or hybrid similarity measures. The methodology has been validated by application to a fault diagnosis problem. The classifier has shown excellent performances in diagnosing faults to a control flow valve from an industrial device.
机译:本文介绍了一种用于故障诊断的新型模糊分类方法。所提出的模糊分类器的主要优点是:定义不同类别的区域具有很高的准确性,并且在重叠区域内具有很好的判别精度。分类器使用的模糊集基于问题空间中对象之间的相似性度量。分类器的另一个优点是它能够处理单个或混合相似性度量。该方法已通过应用于故障诊断问题而得到验证。该分类器在诊断来自工业设备的控制流量阀的故障方面表现出卓越的性能。

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