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Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm

Maohua Xiao et al · KeAi Communications Co., Ltd · 2021

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Abstract In the process of Wavelet Analysis, only the low-frequency signals are re-decomposed, and the high-frequency signals are no longer decomposed, resulting in a decrease in frequency resolution with increasing frequency. Therefore, in this paper, firstly, Wavelet Packet Decomposition is used for feature extraction of vibration signals, which makes up for the shortcomings of Wavelet Analysis in extracting fault features of nonlinear vibration signals, and different energy values in different frequency bands are obtained by Wavelet Packet Decomposition. The features are visualized by the K-Means clustering method, and the results show that the extracted energy features can accurately distinguish the different states of the bearing. Then a fault diagnosis model based on BP Neural Network optimized by Beetle Algorithm is proposed to identify the bearing faults. Compared with the Particle Swarm Algorithm, Beetle Algorithm can quickly find the error extreme value, which greatly reduces the training time of the model. At last, two experiments are conducted, which show that the accuracy of the model can reach more than 95%, and the model has a certain anti-interference ability.

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APA 7

al, M. X. E. (2021). Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm. https://doi.org/10.1186/s10033-021-00648-2

MLA

al, Maohua Xiao et. "Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm." 2021. https://doi.org/10.1186/s10033-021-00648-2.

Chicago

al, Maohua Xiao et. 2021. "Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm.". https://doi.org/10.1186/s10033-021-00648-2.

Harvard

al, M. X. E. 2021, Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm, KeAi Communications Co, Ltd, available at: https://doi.org/10.1186/s10033-021-00648-2 [Accessed 5 Aug. 2026].

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Título
Fault Diagnosis Based on BP Neural Network Optimized by Beetle Algorithm
Autor / colaboradores
Maohua Xiao et al
Editorial
KeAi Communications Co., Ltd
Año de publicación
2021
ISSN
1000-9345
ISSN
1000-9345
Idioma
Inglés

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