RETRACTED ARTICLE: Research on Feature Extraction and Diagnosis Method of Gearbox Vibration Signal Based on VMD and ResNeXt
Gearbox fault diagnosis
Sample entropy
0209 industrial biotechnology
Electronic computers. Computer science
Deep learning
QA75.5-76.95
02 engineering and technology
Variational mode decomposition
ResNeXt network
DOI:
10.1007/s44196-023-00301-x
Publication Date:
2023-07-26T12:02:10Z
AUTHORS (5)
ABSTRACT
AbstractAiming at the nonlinear and non-stationarity of gearbox fault signals and the confusion among different fault categories, a gear fault diagnosis method combining variational mode decomposition, reconstruction and ResNeXt is proposed in this paper. In this paper, parameter K of VMD is determined according to the changing trend of sample entropy (SE), K modal components are obtained after decomposition, and the effective modal components are extracted and reconstructed according to Pearson autocorrelation coefficient, so as to remove redundant information from the original signal. Then the reconstructed signal is transformed by time–frequency and output two-dimensional time–frequency information, which is used as the input of ResNeXt model to extract the characteristics of different faults. Moreover, the model performance is improved by changing the learning rate decline rate, and a fault diagnosis model with high precision and good stability is established.
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