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首页> 外文期刊>International Journal of Computational Intelligence and Applications >AN ARTIFICIAL IMMUNE SYSTEM FOR CLASSIFYING AERODYNAMIC INSTABILITIES OF CENTRIFUGAL COMPRESSORS
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AN ARTIFICIAL IMMUNE SYSTEM FOR CLASSIFYING AERODYNAMIC INSTABILITIES OF CENTRIFUGAL COMPRESSORS

机译:用于对离心压缩机的气动不稳定性进行分类的人工免疫系统

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摘要

Anomaly detection prevents rotating machinery from unforeseeable faults. Using such detection methods, we consider the problem of identifying aerodynamic instabilities in centrifugal compressors by analyzing just the compressor's sound signal. Therefore, an artificial immune system (AIS)-based classification is applied. The deployed v-detectors work according to the negative selection principle and were optimized in position and shape by using a novel procedure of detector generation. This allows reducing the number of detectors while maintaining classification success. Ideas such as multiple layer AIS and fuzzy detector edges enhance the tuning of the classification response. Numerical results demonstrate the design, show the validity for the presented application and give an example for adopting soft computing methods for condition monitoring.
机译:异常检测可防止旋转机械发生不可预见的故障。使用这种检测方法,我们考虑仅通过分析压缩机的声音信号来确定离心式压缩机中的空气动力学不稳定性的问题。因此,应用基于人工免疫系统(AIS)的分类。部署的v型探测器根据否定选择原理工作,并通过使用新颖的探测器生成程序对位置和形状进行了优化。这允许减少检测器的数量,同时保持分类成功。诸如多层AIS和模糊检测器边缘之类的想法增强了分类响应的调整。数值结果证明了该设计,证明了所提出的应用的有效性,并为采用软计算方法进行状态监测提供了实例。

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