DocumentCode :
3408304
Title :
Fault Feature Extraction Using Redundant Lifting Scheme and Independent Component Analysis
Author :
Jiang, Hongkai ; Wang, Zhongsheng
Author_Institution :
Northwestern Polytech. Univ., Xian
fYear :
2007
fDate :
5-8 Aug. 2007
Firstpage :
2435
Lastpage :
2439
Abstract :
Vibration signals of a machine always contain abundant feature components. In this paper, a novel method for fault feature components extraction based on redundant lifting scheme and independent component analysis is proposed. Redundant prediction operator and update operator which adapt to the dominant structure of the signal are constructed, and the thresholds at different scales are selected according to the noise characteristics. The signal is de-noised and recovered, and independent component analysis is used on the de-noised signal to separate the fault feature components that are hidden in the signal. Practical vibration signals acquired from a generator set with rub impact fault are analyzed with the proposed method, and the failure symptom is extracted successfully. The results show that the proposed method is superior to independent component method in extracting the fault feature components from heavy background noise.
Keywords :
feature extraction; independent component analysis; signal denoising; fault feature extraction; independent component analysis; redundant lifting scheme; signal de-noising; vibration signals; Algorithm design and analysis; Automation; Failure analysis; Feature extraction; Independent component analysis; Mechatronics; Resonance light scattering; Signal design; Signal generators; Vibrations; Feature extraction; Independent component analysis; Redundant lifting scheme; Vibration signal;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mechatronics and Automation, 2007. ICMA 2007. International Conference on
Conference_Location :
Harbin
Print_ISBN :
978-1-4244-0828-3
Electronic_ISBN :
978-1-4244-0828-3
Type :
conf
DOI :
10.1109/ICMA.2007.4303937
Filename :
4303937
Link To Document :
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