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使用深度域自适应提高基于 sEMG 的模式识别的稳健性和适应性。

Improving the Robustness and Adaptability of sEMG-Based Pattern Recognition Using Deep Domain Adaptation.

出版信息

IEEE J Biomed Health Inform. 2022 Nov;26(11):5450-5460. doi: 10.1109/JBHI.2022.3197831. Epub 2022 Nov 10.

Abstract

The pattern recognition (PR) based on surface electromyography (sEMG) could improve the quality of daily life of amputees. However, the lack of robustness and adaptability hinders its practical application. To realize the long-term reliability and user adaptability simultaneously, a novel multi-task dual-stream supervised domain adaptation (MDSDA) network based on convolutional neural network (CNN) was proposed. A long-term multi-subject sEMG signal acquisition was conducted to validate the performance of MDSDA, recruiting 12 able-bodied subjects. A total of thirty gestures were used for the acquisition, including one set of static gestures and two sets of dynamic gestures. The long-term multi-subject sEMG dataset is publicly available at the website. Four train-test estimations were designed to evaluate the robustness and adaptability of MDSDA. The results showed that MDSDA outperformed CNN and fune-tuning. Furthermore, we studied the divisibility between static and dynamic gestures that performed similar actions. The outcomes demonstrated that there existed high separability between them. This may be helpful to reduce the signal collection burden. Experimental results proved MDSDA has the potential to provide a robust and generalized PR system for the clinic applications.

摘要

基于表面肌电信号(sEMG)的模式识别(PR)可以提高截肢者的日常生活质量。然而,缺乏鲁棒性和适应性阻碍了其实际应用。为了同时实现长期可靠性和用户适应性,提出了一种基于卷积神经网络(CNN)的新型多任务双流监督域自适应(MDSDA)网络。通过长期多主体 sEMG 信号采集来验证 MDSDA 的性能,共招募了 12 名健康受试者。采集了三十个手势,包括一组静态手势和两组动态手势。长期多主体 sEMG 数据集可在网站上获取。设计了四个训练-测试估计来评估 MDSDA 的鲁棒性和适应性。结果表明,MDSDA 优于 CNN 和功能调整。此外,我们研究了执行相似动作的静态和动态手势之间的可分性。结果表明,它们之间存在很高的可分性。这可能有助于减轻信号采集负担。实验结果证明,MDSDA 有可能为临床应用提供稳健且通用的 PR 系统。

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