中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Determining the Optimal Window Parameters for Accurate and Reliable Decoding of Multiple Classes of Upper Limb Motor Imagery Tasks

文献类型:会议论文

作者Shixiong Chen; Guanglin Li; Peng Fang; Oluwarotimi Williams Samuel; Mojisola Grace Asogbon; Yanjuan Geng, Sandeep Pirbhulal; Deogratias Mzurikwao
出版日期2018
会议日期2018
会议地点Shenzhen
英文摘要Individuals with high-level amputation or neuromuscular disorder basically lack sufficient residual arm muscles from which adequate myoelectric signals could be obtained for accurate decoding of their limb movement intents for prosthesis control. In this regard, electroencephalogram (EEG) signal associated with their limb movements could be used to provide alternative control input to multiple degrees of freedom prosthesis for such individuals. The feature extraction method and analysis window parameters (window size and window increment) used to characterize the EEG signal patterns plays an important role in determining the accuracy and stability of the entire prosthetics. Therefore, we studied the effect of different analysis windowing parameters on classification accuracy and stability of frequency-domain features using 64-channel EEG recordings obtained from three amputees. Experimental results shows that the motor imagery patterns associated with the five classes of upper limb movement were decoded with an average accuracy of 99.79% when a window length of 100ms and increment of 25ms was utilized. Regardless of the window increment used, the classification accuracy of the decoded limb movements increased steadily with a decrease in the window length, indicating an inverse relationship between accuracy and window length. Thus, the outcome of this study may provide valuable information for the development of accurate and robust control mechanism for multifunctional neuroprosthesis.
源URL[http://ir.siat.ac.cn:8080/handle/172644/14466]  
专题深圳先进技术研究院_医工所
推荐引用方式
GB/T 7714
Shixiong Chen,Guanglin Li,Peng Fang,et al. Determining the Optimal Window Parameters for Accurate and Reliable Decoding of Multiple Classes of Upper Limb Motor Imagery Tasks[C]. 见:. Shenzhen. 2018.

入库方式: OAI收割

来源:深圳先进技术研究院

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