2020
DOI: 10.1109/access.2020.2979999
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Data Association-Based Fault Diagnosis of IMUs: Optimized DBN Design and Wheeled Robot Evaluation

Abstract: Deep belief network (DBN) is now being recognized as a powerful and eminently practical tool for large scale data processing. The main characteristics of DBN are the feature extension from low-level content to high-level data association and the representation of joint distribution between original data and matched labels. For a wheeled robot with no other available location reference supports, the internally integrated inertial measurement units (IMUs) essentially requires the robot to be able to implement ef… Show more

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Cited by 3 publications
(2 citation statements)
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References 28 publications
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“…Gou et al [27] proposed an aeroengine fault diagnosis method based on continuous wavelet transform and convolutional neural network model, which effectively reveals the fault of the signal in the sensor and can accurately identify the type of fault. Xia et al [28] proposed an optimized DBN-based fault diagnosis design to deal with such complex and diverse faults. Tran et al [29] proposed a method based on wavelet transform and DBN.…”
Section: Introductionmentioning
confidence: 99%
“…Gou et al [27] proposed an aeroengine fault diagnosis method based on continuous wavelet transform and convolutional neural network model, which effectively reveals the fault of the signal in the sensor and can accurately identify the type of fault. Xia et al [28] proposed an optimized DBN-based fault diagnosis design to deal with such complex and diverse faults. Tran et al [29] proposed a method based on wavelet transform and DBN.…”
Section: Introductionmentioning
confidence: 99%
“…Neural network (NN) method has the advantages of massively parallel, distributed processing, self-organization and self-learning capacity, so it is very popular on fault diagnosis [18][19][20] . The main stream of NN include basic perceptron, Feed-Forward NN (FFNN), long short-term memory (LSTM), CNN and RNN etc.…”
mentioning
confidence: 99%