Phase Information for Classification Between Clench Speed and Clench Force Motor Imagery
文献类型:期刊论文
作者 | Xu BL(徐保磊)![]() ![]() ![]() ![]() |
刊名 | Sensors & Transducers
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出版日期 | 2014 |
卷号 | 170期号:5页码:234-240 |
关键词 | Phase Brain-computer interface (BCI) MEMD, Hilbert transform motor parameters imagery |
ISSN号 | 2306-8515 |
产权排序 | 1 |
中文摘要 | In this paper, we investigate the phase information for classification between clench speed and clench force motor imagery for BCI applications. The multivariate extensions of empirical mode decomposition (MEMD) are used to decompose EEG data into intrinsic mode functions (IMFs). Then, the phase information is got by transforming IMFs into analytic signal using Hiblert transforms. Six feature types are compared in the paper for channel C3, Cz and C4: the amplitude of IMFs, the power of IMFs, the amplitude of the corresponding analytic signal, the instantaneous phase of the analytic signal, the instantaneous frequency of the analytic signal and the phase-locking value (PLV) between two channels. The support vector machine with 5-fold crossvalidation is used to classify clench speed motor imagery from clench force motor imagery. The results show that for some subjects the instantaneous phase can get the best results, while PLV never performs best compared with other features. The minimum classification error rate of 0.25 is reached in our research. |
收录类别 | EI |
语种 | 英语 |
公开日期 | 2014-12-29 |
源URL | [http://ir.sia.cn/handle/173321/15471] ![]() |
专题 | 沈阳自动化研究所_机器人学研究室 |
推荐引用方式 GB/T 7714 | Xu BL,Fu YF,Shi G,et al. Phase Information for Classification Between Clench Speed and Clench Force Motor Imagery[J]. Sensors & Transducers,2014,170(5):234-240. |
APA | Xu BL,Fu YF,Shi G,Yin XX,Wang ZD,&Li HY.(2014).Phase Information for Classification Between Clench Speed and Clench Force Motor Imagery.Sensors & Transducers,170(5),234-240. |
MLA | Xu BL,et al."Phase Information for Classification Between Clench Speed and Clench Force Motor Imagery".Sensors & Transducers 170.5(2014):234-240. |
入库方式: OAI收割
来源:沈阳自动化研究所
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