Emulation of computer mouse control with a noninvasive brain-computer interface

被引:131
作者
McFarland, Dennis J. [1 ,2 ]
Krusienski, Dean J. [3 ]
Sarnacki, William A. [1 ,2 ]
Wolpaw, Jonathan R. [1 ,2 ]
机构
[1] New York State Dept Hlth, Wadsworth Ctr, Lab Nervous Syst Disorders, Albany, NY 12201 USA
[2] SUNY Albany, Albany, NY 12201 USA
[3] Univ N Florida, Jacksonville, FL 32224 USA
关键词
D O I
10.1088/1741-2560/5/2/001
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Brain-computer interface (BCI) technology can provide nonmuscular communication and control to people who are severely paralyzed. BCIs can use noninvasive or invasive techniques for recording the brain signals that convey the user's commands. Although noninvasive BCIs are used for simple applications, it has frequently been assumed that only invasive BCIs, which use electrodes implanted in the brain, will be able to provide multidimensional sequential control of a robotic arm or a neuroprosthesis. The present study shows that a noninvasive BCI using scalp-recorded electroencephalographic (EEG) activity and an adaptive algorithm can provide people, including people with spinal cord injuries, with two-dimensional cursor movement and target selection. Multiple targets were presented around the periphery of a computer screen, with one designated as the correct target. The user's task was to use EEG to move a cursor from the center of the screen to the correct target and then to use an additional EEG feature to select the target. If the cursor reached an incorrect target, the user was instructed not to select it. Thus, this task emulated the key features of mouse operation. The results indicate that people with severe motor disabilities could use brain signals for sequential multidimensional movement and selection.
引用
收藏
页码:101 / 110
页数:10
相关论文
共 41 条
[1]   Selecting the signals for a brain-machine interface [J].
Andersen, RA ;
Musallam, S ;
Pesaran, B .
CURRENT OPINION IN NEUROBIOLOGY, 2004, 14 (06) :720-726
[2]  
[Anonymous], 1995, Journal of Clinical Neurophysiology, DOI DOI 10.1097/00004691-199104000-00007
[3]  
BALL T, 2004, BIOMED TECH, V49, P756
[4]   A spelling device for the paralysed [J].
Birbaumer, N ;
Ghanayim, N ;
Hinterberger, T ;
Iversen, I ;
Kotchoubey, B ;
Kübler, A ;
Perelmouter, J ;
Taub, E ;
Flor, H .
NATURE, 1999, 398 (6725) :297-298
[5]   Mental simulation of an action modulates the excitability of spinal reflex pathways in man [J].
Bonnet, M ;
Decety, J ;
Jeannerod, M ;
Requin, J .
COGNITIVE BRAIN RESEARCH, 1997, 5 (03) :221-228
[6]   Learning to control a brain-machine interface for reaching and grasping by primates [J].
Carmena, JM ;
Lebedev, MA ;
Crist, RE ;
O'Doherty, JE ;
Santucci, DM ;
Dimitrov, DF ;
Patil, PG ;
Henriquez, CS ;
Nicolelis, MAL .
PLOS BIOLOGY, 2003, 1 (02) :193-208
[7]   Neural prosthetic devices for quadriplegia [J].
Chapin, JK .
CURRENT OPINION IN NEUROLOGY, 2000, 13 (06) :671-675
[8]   Real-time control of a robot arm using simultaneously recorded neurons in the motor cortex [J].
Chapin, JK ;
Moxon, KA ;
Markowitz, RS ;
Nicolelis, MAL .
NATURE NEUROSCIENCE, 1999, 2 (07) :664-670
[9]   EMG activity in selected target muscles during imagery rising on tiptoes in healthy adults and poststroke hemiparetic patients [J].
Dickstein, R ;
Gazit-Grunwald, M ;
Plax, M ;
Dunsky, A ;
Marcovitz, E .
JOURNAL OF MOTOR BEHAVIOR, 2005, 37 (06) :475-483
[10]   Connecting cortex to machines: recent advances in brain interfaces [J].
Donoghue, JP .
NATURE NEUROSCIENCE, 2002, 5 (Suppl 11) :1085-1088