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Optimizing sEMG Gesture Recognition: Leveraging Channel Selection and Feature Compression for Improved Accuracy and Computational Efficiency

In the task of upper-limb pattern recognition, effective feature extraction, channel selection, and classification methods are crucial for the construction of an efficient surface electromyography (sEMG) signal classification framework. However, existing deep learning models often face limitations d...

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主要な著者: Yinxi Niu, Wensheng Chen, Hui Zeng, Zhenhua Gan, Baoping Xiong
フォーマット: Artigo
言語:Inglês
出版事項: MDPI AG 2024-04-01
シリーズ:Applied Sciences
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オンライン・アクセス:https://www.mdpi.com/2076-3417/14/8/3389
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