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Composite Multivariate Multi-Scale Permutation Entropy and Laplacian Score Based Fault Diagnosis of Rolling Bearing
Authors:Wanming Ying  Jinyu Tong  Zhilin Dong  Haiyang Pan  Qingyun Liu  Jinde Zheng
Affiliation:1.School of Mechanical Engineering, Anhui University of Technology, Maanshan 243032, China; (W.Y.); (H.P.); (Q.L.); (J.Z.);2.Key Laboratory of Advanced Manufacturing Technology, Beijing University of Technology, Beijing 100124, China;
Abstract:As a powerful tool for measuring complexity and randomness, multivariate multi-scale permutation entropy (MMPE) has been widely applied to the feature representation and extraction of multi-channel signals. However, MMPE still has some intrinsic shortcomings that exist in the coarse-grained procedure, and it lacks the precise estimation of entropy value. To address these issues, in this paper a novel non-linear dynamic method named composite multivariate multi-scale permutation entropy (CMMPE) is proposed, for optimizing insufficient coarse-grained process in MMPE, and thus to avoid the loss of information. The simulated signals are used to verify the validity of CMMPE by comparing it with the often-used MMPE method. An intelligent fault diagnosis method is then put forward on the basis of CMMPE, Laplacian score (LS), and bat optimization algorithm-based support vector machine (BA-SVM). Finally, the proposed fault diagnosis method is utilized to analyze the test data of rolling bearings and is then compared with the MMPE, multivariate multi-scale multiscale entropy (MMFE), and multi-scale permutation entropy (MPE) based fault diagnosis methods. The results indicate that the proposed fault diagnosis method of rolling bearing can achieve effective identification of fault categories and is superior to comparative methods.
Keywords:rolling bearing   fault diagnosis   multivariate multi-scale permutation entropy   composite multivariate multi-scale permutation entropy   Laplacian score
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