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Hand Gesture Recognition Using Compact CNN via Surface Electromyography Signals
by
Zheng, Bin
, Fu, Jianting
, Wu, Yuheng
, Li, Haochen
, Chen, Lin
in
Algorithms
/ Artificial intelligence
/ convolution neural networks (cnns)
/ Datasets
/ Electromyography - methods
/ Fourier transforms
/ Gestures
/ Hand
/ hand gesture recognition
/ Humans
/ Neural networks
/ Neural Networks, Computer
/ Pattern Recognition, Automated - methods
/ Reproducibility of Results
/ Signal Processing, Computer-Assisted
/ surface electromyography (semg)
2020
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Hand Gesture Recognition Using Compact CNN via Surface Electromyography Signals
by
Zheng, Bin
, Fu, Jianting
, Wu, Yuheng
, Li, Haochen
, Chen, Lin
in
Algorithms
/ Artificial intelligence
/ convolution neural networks (cnns)
/ Datasets
/ Electromyography - methods
/ Fourier transforms
/ Gestures
/ Hand
/ hand gesture recognition
/ Humans
/ Neural networks
/ Neural Networks, Computer
/ Pattern Recognition, Automated - methods
/ Reproducibility of Results
/ Signal Processing, Computer-Assisted
/ surface electromyography (semg)
2020
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Do you wish to request the book?
Hand Gesture Recognition Using Compact CNN via Surface Electromyography Signals
by
Zheng, Bin
, Fu, Jianting
, Wu, Yuheng
, Li, Haochen
, Chen, Lin
in
Algorithms
/ Artificial intelligence
/ convolution neural networks (cnns)
/ Datasets
/ Electromyography - methods
/ Fourier transforms
/ Gestures
/ Hand
/ hand gesture recognition
/ Humans
/ Neural networks
/ Neural Networks, Computer
/ Pattern Recognition, Automated - methods
/ Reproducibility of Results
/ Signal Processing, Computer-Assisted
/ surface electromyography (semg)
2020
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Hand Gesture Recognition Using Compact CNN via Surface Electromyography Signals
Journal Article
Hand Gesture Recognition Using Compact CNN via Surface Electromyography Signals
2020
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Overview
By training the deep neural network model, the hidden features in Surface Electromyography(sEMG) signals can be extracted. The motion intention of the human can be predicted by analysis of sEMG. However, the models recently proposed by researchers often have a large number of parameters. Therefore, we designed a compact Convolution Neural Network (CNN) model, which not only improves the classification accuracy but also reduces the number of parameters in the model. Our proposed model was validated on the Ninapro DB5 Dataset and the Myo Dataset. The classification accuracy of gesture recognition achieved good results.
Publisher
MDPI AG,MDPI
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