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Fault Diagnosis of Linear Guide Rails Based on SSTG Combined with CA-DenseNet
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作者 Yanping Wu Juncai Song +2 位作者 Xianhong Wu Xiaoxian Wang Siliang Lu 《Journal of Dynamics, Monitoring and Diagnostics》 2024年第1期1-10,共10页
Monitoring the status of linear guide rails is essential because they are important components in linear motion mechanical production.Thus,this paper proposes a new method of conducting the fault diagnosis of linear g... Monitoring the status of linear guide rails is essential because they are important components in linear motion mechanical production.Thus,this paper proposes a new method of conducting the fault diagnosis of linear guide rails.First,synchrosqueezing transform(SST)combined with Gaussian high-pass filter,termed as SSTG,is proposed to process vibration signals of linear guide rails and obtain time-frequency images,thus helping realize fault feature visual enhancement.Next,the coordinate attention(CA)mechanism is introduced to promote the DenseNet model and obtain the CA-DenseNet deep learning framework,thus realizing accurate fault classifica-tion.Comparison experiments with other methods reveal that the proposed method has a high classification accuracy of up to 95.0%.The experimental results further demonstrate the effectiveness and robustness of the proposed method for the fault diagnosis of linear guide rails. 展开更多
关键词 CA-DenseNet fault diagnosis linear guide rails SSTG
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