期刊文献+

基于小波变换的听觉脑机接口技术研究 被引量:4

Research on Auditory BCI Based on Wavelet Transform
在线阅读 下载PDF
导出
摘要 基于听觉的脑机接口系统为视力减退或者无法控制眼球运动的闭锁综合症患者提供了一种新的交流通道,使其可以与外界环境进行简单的交流。为了实现在线二分类听觉脑机接口系统,采用包含两种靶刺激、一种非靶刺激的三音oddball范式作为听觉刺激,通过一维离散小波变换对所得脑电数据进行单次样本特征提取,选取低频的特征向量,并采用支持向量机(SVM)进行目标与非目标的识别。结果表明,利用小波变换可以有效地单次提取特征向量P300,相当于20次靶刺激响应的叠加结果,最终目标识别正确率可高达80%以上,达到与视觉诱发的BCI模式可比的效果,可以用于二分类的脑机接口系统。 Auditory brain-computer interfaces(BCIs) provide a means of non-muscular communication for locked-in state(LIS) patients who have compromised vision or lose the control of their eye movement.In this paper,an auditory BCI based on a three-stimulus oddball paradigm was evaluated to make an online binary decision.One-dimensional discrete wavelet transform(DWT) method were used to reduce noise and extract low-frequency feature.The target and non-target stimuli were classified by support vector machines(SVM).Experiments showed that the P300 feature could be effectively extracted using the wavelet transform in a single trial,equivalent to the average result of original target signals for 20 times.The identification correct rates of 84% were acquired,which is comparable to the BCI based on visual.
出处 《中国生物医学工程学报》 CAS CSCD 北大核心 2011年第5期661-665,共5页 Chinese Journal of Biomedical Engineering
基金 河北省自然科学基金(E2009000062)
关键词 脑机接口 P300 小波变换 支持向量机 brain-computer interface auditory P300 wavelet transform SVM
作者简介 通信作者。E-mail:gzxu2006@gmail.com
  • 相关文献

参考文献7

  • 1Tamer D,Ahmet A,Yorgo I,et al.Wavelet analysis of oddball P300[J].International Journal of Psychophysiology,2001,39:221-227.
  • 2闫铮,宾光宇,高小榕.基于左右视野双频率刺激的SSVEP脑-机接口[J].清华大学学报(自然科学版),2009(12):2013-2016. 被引量:9
  • 3Matin T,Huxlin KR,Kavcic V.Motion-onset visual evoked potentials predict performance during a global direction discrimination task[J].Neuropsychologia,2010,48 (12) :3563-3572.
  • 4Sellers EW,Krusienski D J,McFarland Dennis J,et al.A P300 event-related potential brain-computer interlace (BCI):The effects of matrix size and inter stimulus interval on performance[J].Biological Psychology,2006,73(3):242-252.
  • 5Guo Jing, Gao Shangkai, Hong Bo. An Auditory BrainComputer Interlace Using Active Mental Response[J].IEEE Transactions on Neural Systems and Rehabilitation Engineering,2010,18:230-235.
  • 6Pham M,Hinterberger T,Neumann N,et al. An auditory brain-computer interface based on the self-regulation of slow cortical potentials[J]. Neurorehabiitition,2005,19:206-218.
  • 7高上凯.神经工程与脑-机接口[J].生命科学,2009,21(2):177-180. 被引量:22

二级参考文献13

  • 1Durand DM. What is neural engineering? J Neural Eng, 2007, 4 (4)
  • 2Guo F, Hong B, Gao XR, et al. A brain-computer interface using motion-onset visual evoked potential. J Neural Eng, 2008, 5:477-85
  • 3Birbaumer N. Breaking the silence: Brain-computer interfaces (BCI) for communication and motor control [J]. Psychophysiology, 2006, 43(6) : 517 - 532.
  • 4Wolpaw J R, Birbaumer N, McFarland D J, et al. Brain-computer interfaces for communication and control [J]. Clinical Neurophysiology, 2002, 113(6): 767- 791.
  • 5CHENG Ming, GAO Xiaorong, GAO Shangkai, et al. Design and implementation of a brain-computer interface with high transfer rates[J].IEEE Trans on Biome Eng, 2002, 49(10) : 1181 - 1186.
  • 6GAO Xiaorong, CHENG Ming, GAO Shangkai. A BCl-based environmental controller for the motion-disabled[J].IEEE Trans on Neural Sys and Rehabilitation Eng, 2003, 11(2): 137-140.
  • 7Kelly S P, Lablor E C. Visual spatial attention control in an independent brain-computer interface [J]. IEEE Trans on Biome Eng, 2005, 52(9) : 1588 - 1596.
  • 8Byczuk M A, Poryzala M P. A virtual keypad based on alternate half-field stimulated visual evoked potentials [C]// Info Teeh Convergence, 2007, ISITC 2007. 296 - 300.
  • 9Hotelling H. Relations between two sets of variants [J]. Biometrika, 1936, 28:321-377.
  • 10Anderson T W. An Introduction to Multivariate Statistical Analysis [M]. 2nd ed. New York: Wiley, 1984.

共引文献29

同被引文献41

  • 1庄玮,段锁林,徐亭婷.基于SVM的4类运动想象的脑电信号分类方法[J].常州大学学报(自然科学版),2014,26(1):42-46. 被引量:6
  • 2Wolpaw JR, Birbaumer N, McFarland, et al. Brain computer interface for communication and control [ J ]. Clin Neurophysiol, 2002, 113:761 -791.
  • 3Wang Lei, Xu Guizhi, Wang Jiang, Yang Shuo, Yan Weili. Feature extraction of mental task in BCI based on the method of approximate entropy [ C ] //Proceedings of the 29th Annual International Conference of the IEEE Engineering in Medicine and Biology Society. Lyon: IEEE, 2007:1941 -1944.
  • 4Pfurtscheller G. Event-related synchronization ( ERS ) : an electrophysiological correlate of cortical areas at rest [ J ]. Electroencephalogram Clinical Neurophysiology, 1992, 83 ( 1 ) : 62 - 69.
  • 5Birbaumer N, Kubler A, Ghanayim N, et al. The thought translation device (TTD) for completely paralyzed patients [J]. IEEE Transactions on Rehabilitation Engineering, 2000, 8 (2) : 190 - 193.
  • 6Manyakov NV, Chumerin N, Hulle MM. Multichannel decoding for phase-coded ssvep brain-computer interface [ J ]. International Journal of Neural Systems, 2012, 12 ( 5 ) : 1250022.
  • 7Middendorf M, McMillan G, Calhoun G, et al. Brain-Computer interface based on steady-state visual evoked response [ J]. IEEE Transactions on Rehabilitation Engineering, 2000, 8 (2) :211 - 214.
  • 8Townsend G, Lapallo BK. , Boulay CB, et al. A novel P300 - based brain-computer interface stimulus presentation paradigm: Moving beyond rows and columns [ J ]. Clinical Neurophysiology, 2010, 121(7): 1109- 1120.
  • 9Hinterberger T, Neumann N, Pham M, et al. A multimodal brain-based feedback and communication system [ J ]. Experimental Brain Research, 2004, 154 (4) : 521 -526.
  • 10Pham M, Hinterberger T, Neumann N, et al. An auditory brain- computer interface based on the self-regulation of slow cortical potentials [ J]. Neurorehabilitation & Neural Repair, 2005, 19 (3) :206 -218.

引证文献4

二级引证文献14

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部