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Based on an in-depth study of wavelet gray moment,we proposed a concept of a time-division scale level moment and gave the specific definition;ulteriorly,we discussed the factors which affected the fault diagnosis ability of a time-division scale level moment.The analysis results in the caculation of six typical fault signals show that the time-division scale level moment can be used to display the detailed information of a wavelet gray level image,extract the signal’s characteristics effectively,and distinguish the vibration fault.Compared to the method of a wave gray moment vector,the method mentioned in this paper can provide higher calculation speed and higher capacity of fault identification,so it is more suitable for online fault diagnosis for rotating machinery.
Based on an in-depth study of wavelet gray moment, we proposed a concept of a time-division scale level moment and gave the specific definition; ulteriorly, we discussed the factors which affected the fault diagnosis ability of a time-division scale level moment The analysis results in the caculation of six typical fault signals show that the time-division scale level moment can be used to display the detailed information of a wavelet gray level image, extract the signal’s characteristics effectively, and distinguish the vibration fault. Compared to the method of a wave gray moment vector, the method mentioned in this paper can provide higher calculation speed and higher capacity of fault identification, so it is more suitable for online fault diagnosis for rotating machinery.