A closed-loop human simulator for investigating the role of feedback control in brain-machine interfaces

被引:128
作者
Cunningham, John P. [1 ,2 ]
Nuyujukian, Paul [3 ,4 ]
Gilja, Vikash [5 ]
Chestek, Cindy A. [1 ]
Ryu, Stephen I. [1 ,7 ]
Shenoy, Krishna V. [1 ,3 ,6 ]
机构
[1] Stanford Univ, Dept Elect Engn, Stanford, CA 94305 USA
[2] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
[3] Stanford Univ, Dept Bioengn, Stanford, CA 94305 USA
[4] Stanford Univ, Sch Med, Stanford, CA 94305 USA
[5] Stanford Univ, Dept Comp Sci, Stanford, CA 94305 USA
[6] Stanford Univ, Neurosci Program, Stanford, CA 94305 USA
[7] Palo Alto Med Fdn, Palo Alto, CA USA
基金
英国工程与自然科学研究理事会;
关键词
neural prostheses; brain-computer interfaces; DIRECT CORTICAL CONTROL; REACHING MOVEMENTS; CONTROL SIGNALS; NEURAL-CONTROL; MOTOR; REPRESENTATION; PREMOTOR; MODEL; ARM; PROPRIOCEPTION;
D O I
10.1152/jn.00503.2010
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Cunningham JP, Nuyujukian P, Gilja V, Chestek CA, Ryu SI, Shenoy KV. A closed-loop human simulator for investigating the role of feedback control in brain-machine interfaces. J Neurophysiol 105: 1932-1949, 2011. First published October 13, 2010; doi:10.1152/jn.00503.2010.-Neural prosthetic systems seek to improve the lives of severely disabled people by decoding neural activity into useful behavioral commands. These systems and their decoding algorithms are typically developed "offline," using neural activity previously gathered from a healthy animal, and the decoded movement is then compared with the true movement that accompanied the recorded neural activity. However, this offline design and testing may neglect important features of a real prosthesis, most notably the critical role of feedback control, which enables the user to adjust neural activity while using the prosthesis. We hypothesize that understanding and optimally designing high-performance decoders require an experimental platform where humans are in closed-loop with the various candidate decode systems and algorithms. It remains unexplored the extent to which the subject can, for a particular decode system, algorithm, or parameter, engage feedback and other strategies to improve decode performance. Closed-loop testing may suggest different choices than offline analyses. Here we ask if a healthy human subject, using a closed-loop neural prosthesis driven by synthetic neural activity, can inform system design. We use this online prosthesis simulator (OPS) to optimize "online" decode performance based on a key parameter of a current state-of-the-art decode algorithm, the bin width of a Kalman filter. First, we show that offline and online analyses indeed suggest different parameter choices. Previous literature and our offline analyses agree that neural activity should be analyzed in bins of 100- to 300-ms width. OPS analysis, which incorporates feedback control, suggests that much shorter bin widths (25-50 ms) yield higher decode performance. Second, we confirm this surprising finding using a closed-loop rhesus monkey prosthetic system. These findings illustrate the type of discovery made possible by the OPS, and so we hypothesize that this novel testing approach will help in the design of prosthetic systems that will translate well to human patients.
引用
收藏
页码:1932 / 1949
页数:18
相关论文
共 86 条
  • [61] Instant neural control of a movement signal
    Serruya, MD
    Hatsopoulos, NG
    Paninski, L
    Fellows, MR
    Donoghue, JP
    [J]. NATURE, 2002, 416 (6877) : 141 - 142
  • [62] SHADMEHR R, 1994, J NEUROSCI, V14, P3208
  • [63] Shadmehr R., 2005, The computational neurobiology of reaching and pointing: A foundation for motor learning
  • [64] SHAKHNAROVICH G, 2006, ADV NIPS, V18
  • [65] Neural prosthetic control signals from plan activity
    Shenoy, KV
    Meeker, D
    Cao, SY
    Kureshi, SA
    Pesaran, B
    Buneo, CA
    Batista, AR
    Mitra, PP
    Burdick, JW
    Andersen, RA
    [J]. NEUROREPORT, 2003, 14 (04) : 591 - 596
  • [66] Statistical encoding model for a primary motor cortical brain-machine interface
    Shoham, S
    Paninski, LM
    Fellows, MR
    Hatsopoulos, NG
    Donoghue, JP
    Normann, RA
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2005, 52 (07) : 1312 - 1322
  • [67] Multisensory integration during motor planning
    Sober, SJ
    Sabes, PN
    [J]. JOURNAL OF NEUROSCIENCE, 2003, 23 (18) : 6982 - 6992
  • [68] General-purpose filter design for neural prosthetic devices
    Srinivasan, Lakshminarayan
    Eden, Uri T.
    Mitter, Sanjoy K.
    Brown, Emery N.
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2007, 98 (04) : 2456 - 2475
  • [69] A state-space framework for movement control to dynamic goals through brain-driven interfaces
    Srinivasan, Lakshminarayan
    Brown, Emery N.
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2007, 54 (03) : 526 - 535
  • [70] A state-space analysis for reconstruction of goal-directed movements using neural signals
    Srinivasan, Lakshminarayan
    Eden, Uri T.
    Willsky, Alan S.
    Brown, Emery N.
    [J]. NEURAL COMPUTATION, 2006, 18 (10) : 2465 - 2494