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杨钟亮, 文杨靓, 陈育苗. 基于KF-LSTM模型的手写数字轨迹的sEMG重建算法[J]. 计算机辅助设计与图形学学报, 2019, 31(7): 1247-1257. DOI: 10.3724/SP.J.1089.2019.17482
引用本文: 杨钟亮, 文杨靓, 陈育苗. 基于KF-LSTM模型的手写数字轨迹的sEMG重建算法[J]. 计算机辅助设计与图形学学报, 2019, 31(7): 1247-1257. DOI: 10.3724/SP.J.1089.2019.17482
Yang Zhongliang, Wen Yangliang, Chen Yumiao. Hybrid KF-LSTM Model for sEMG-Based Handwriting Numeral Traces Reconstruction[J]. Journal of Computer-Aided Design & Computer Graphics, 2019, 31(7): 1247-1257. DOI: 10.3724/SP.J.1089.2019.17482
Citation: Yang Zhongliang, Wen Yangliang, Chen Yumiao. Hybrid KF-LSTM Model for sEMG-Based Handwriting Numeral Traces Reconstruction[J]. Journal of Computer-Aided Design & Computer Graphics, 2019, 31(7): 1247-1257. DOI: 10.3724/SP.J.1089.2019.17482

基于KF-LSTM模型的手写数字轨迹的sEMG重建算法

Hybrid KF-LSTM Model for sEMG-Based Handwriting Numeral Traces Reconstruction

  • 摘要: 为了从神经肌肉活动中有效地重建出手写轨迹,提出一种卡尔曼滤波器与长短期记忆网络深度融合的混合模型(KF-LSTM),对手写数字轨迹坐标映射的表面肌电(sEMG)信号进行训练与解码.招募5名被试,设计了组间实验和组内实验方案,同步采集手写过程中的sEMG和轨迹坐标,构建基于KF-LSTM的手写轨迹预测模型;以决定系数和主观可辨认度作为评价指标,分别与LSTM模型、浅层神经网络(NN)模型以及KF模型的重建结果进行比较.实验结果表明,KF-LSTM模型在组间实验及组内实验中的表现均高于其他3种方法,能有效地提升重建精度,提高重建轨迹的光顺度。

     

    Abstract: For the purpose of reconstructing handwriting traces from neuromuscular activities effectively, a well-integrated Kalman filter modified long-short-term memory network hybrid method (KF-LSTM) is proposed, which can train and decode the sEMG (surface electromyography) signals to the corresponding coordinates of handwriting numeral traces. Five participants were recruited for the between-group and within-group experiments. After synchronously collecting the sEMG signals and coordinates in the handwriting process, the KF-LSTM pre- diction models were constructed. The decision coefficient and the subjective identifiability were calculated as the evaluation indices. The performance of the KF-LSTM models was compared with the LSTM models, the NN (neural network) models and the KF (Kalman filter) models. The experiment results show that the proposed KF-LSTM method perform better than the other 3 methods, improve the reconstruction accuracies and make re- constructed traces much smoother.

     

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