残余物
计算机科学
手势识别
手势
模式识别(心理学)
语音识别
人工智能
算法
作者
Yutong Xia,Dawei Qiu,Cheng Zhang,Jing Liu
标识
DOI:10.3389/fbioe.2025.1487020
摘要
The proposed model explores features of sparse sEMG signals by leveraging multi-stream convolution, the combination of adaptive convolution modules and ResNet blocks enhances the model's ability of extracting crucial gesture features. In the future, in order to deal with differences in sEMG signals caused by variations among individuals, a universal multi-gesture recognition algorithm should be developed. Meanwhile, the model should focus on optimizing and streamlining the network to reduce computational load.
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