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Transfer between multiple machine plants: A modified fast self-organizing feature map and two-order selective ensemble based fault diagnosis strategy

机译:多机械设备之间的转移:修改的快速自组织特征图和基于两阶的选择性集合的基于故障诊断策略

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The signal differences cause machine fault diagnosis (MFD) models developed in one plant to not be readily applicable to others. This paper presents a modified fast self-organizing feature map (FSOM) and two-order selective ensemble (SE) strategy to realize transfer learning (TL) between multiple plants, including three major processes: i) modified FSOM to map the original real-imaginary polar diagrams to a new feature space where the differences in the same fault category are reduced, ii) cross Minkowski distance matrix to calculate the similarity between channels, and to select the helpful channels in the source plant by an evaluation process, iii) two-order SE to fuse high-powered channels in the target plant to promote diagnosis. Experiments in two gearbox systems demonstrate the effectiveness of transferring from a simple/local to a complex/global device, thus being a useful tool to solve the practical problem that model in the laboratory and apply in the industrial field. (C) 2019 Elsevier Ltd. All rights reserved.
机译:信号差异导致机器故障诊断(MFD)在一个工厂中开发的模型,不容易适用于其他工厂。本文介绍了修改的快速自组织特征图(FSOM)和两个订单的选择性集合(SE)策略,实现多个工厂之间的传输学习(TL),包括三个主要流程:i)修改了FSOM来映射原始的真实虚构的极性图到一个新的特征空间,其中相同的故障类别的差异减少,ii)交叉Minkowski距离矩阵来计算信道之间的相似性,并通过评估过程,III选择源设备中的有用通道。 -Order SE在目标工厂中保险融合的高功率通道,以促进诊断。两个变速箱系统中的实验证明了从简单/本地转移到复杂/全球设备的有效性,因此是解决实验室模型并在工业领域应用的实际问题的有用工具。 (c)2019年elestvier有限公司保留所有权利。

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