Fault diagnosis method of large-scale complex electromechanical system based on extension neural network

Author:

Zhou Yunfei,Hui Xiaocui

Publisher

Springer Science and Business Media LLC

Subject

Computer Networks and Communications,Software

Reference24 articles.

1. Department of Engineering and Material Science: National Natural Science Fund Committee. Science Press, Machinery and manufacturing science, Beijing (2006)

2. Huang, K., Zhao, J., Zhou, Q.C., Xiong, X.L.: Fault diagnosis on shield machines based on multivariable statistical process monitoring. Chin. J. Constr. Mach. 10(2), 222–227 (2012)

3. Zhang, T.R., Yu, T.B., Zhao, H.F., et al.: Application of data mining technology in fault diagnosis of tunnel boring machine. J. Northeast. Univ. 36(4):527–531, 541 (2015)

4. Shatnawi, Y., Al-Khassaweneh, M.: Fault diagnosis in internal combustion engines using extension neural network. IEEE Trans. Ind. Electron. 61(3), 1434–1443 (2013)

5. Shi, T.: Some measures to improve the quality of fault diagnosis for large-scale complex electromechanical systems. Chin. J. Mech. Eng. 39(9), 1–10 (2003)

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