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DESCRIPTION (provided by applicant): In a scant few years, the Brain Machine Interface (BMI) has gone from science fiction to a scientific curiosity, to a rapidly growing engineering discipline with real potential for clinical importance. The realization that signals recorded from the brain might be used to control inanimate objects has captured the fascination of the popular and scientific communities alike. However, despite tremendous increase in attention and scientific work, two fundamental limitations remain: 1) The great majority of BMIs extract only kinematic (position) information from the brain, ignoring the wealth of force-related information that is also present in the primary motor cortex, and 2) virtually all existing BMIs depend exclusively on natural vision to guide movement, lacking the rapid proprioceptive feedback that is critical for normal movement. We propose to address both of these limitations by building on the progress we have made in the previous grant cycle. We previously demonstrated both joint torque and EMG predictions with accuracy comparable to that of kinematic predictions. We now propose to use this information as the basis both for a torque-based controller, and an adaptive, hybrid torque-position controller. The decoder will use inputs from both primary motor cortex and the dorsal premotor cortex. We hypothesize that this approach will allow the monkey subjects to perform more realistic tasks that require movement in a changing and changing dynamical environment. Two typical examples are the need to grasp and move an object, and the need to control both endpoint force and position, for example, when writing. We have also demonstrated that visually guided BMI performance can be improved with the addition of natural proprioception, and that monkeys can discriminate electrical stimuli of different intensity in proprioceptive areas of the cortex. We now propose to stimulate these areas to provide artificial proprioceptive feedback to the monkey. We will stimulate particular electrodes with patterns intended to mimic the signals that occur when the monkey's limb is perturbed during the movement. We hypothesize that the stimulation will cause the monkey to initiate a short latency correction in a direction determined by the particular characteristics of the stimulation. Ultimately we propose to combine the hybrid, adaptive controller with the proprioceptive prosthesis, and to test the monkey's ability to adapt to the two interfaces. We postulate that that plastic changes in the cortex, combined with algorithmic adaptation will drive improvements in performance with a time course of several days to a week. The proposed experiments will lead directly to clearer understandings of the signals encoded in both the motor and sensory areas of the brain, and the adaptive processes that are critical when a patient recovers from neurological and musculoskeletal disorders like stroke, amputation, or spinal cord injury. Furthermore, we anticipate that the developed technology will directly benefit these same patients as it is moved from the experimental arena to the clinic.
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Differences in motor cortical representations of kinematic variables between action observation and action execution and implications for brain-machine interfaces.
动作观察和动作执行之间运动学变量的运动皮质表示的差异以及对脑机接口的影响。
DOI: 10.1109/embc.2014.6943845
发表时间: 2014
期刊: Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
影响因子: --
作者: [Willett,FrancisR, Suminski,AaronJ, Fagg,AndrewH, Hatsopoulos,NicholasG]
通讯作者: Hatsopoulos,NicholasG
DOI: 10.1007/978-3-319-47313-0_20
发表时间: 2016
期刊: Advances in experimental medicine and biology
影响因子: --
作者: [Tomlinson T, Miller LE]
通讯作者: Miller LE
DOI: 10.1109/tnsre.2011.2163145
发表时间: 2011-10
期刊: IEEE transactions on neural systems and rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society
影响因子: --
作者: [Weber DJ, London BM, Hokanson JA, Ayers CA, Gaunt RA, Torres RR, Zaaimi B, Miller LE]
通讯作者: Miller LE
DOI: 10.1088/1741-2560/10/5/056013
发表时间: 2013-10
期刊: Journal of neural engineering
影响因子: 4
作者: [Zaaimi B, Ruiz-Torres R, Solla SA, Miller LE]
通讯作者: Miller LE
17
    Monkey-to-human transfer of trained iBCI decoders through nonlinear alignment of neural population dynamics
    Robust modeling of within- and across-area population dynamics using recurrent neural networks
    • 批准号:
      10263644
    • 项目类别:
    • 资助金额:
      $131.25万
    • 财政年份:
      2021
    • 负责人:
      Lee Miller
    • 依托单位:
    A primate model of an intra-cortically controlled FES prosthesis for grasp
    A primate model of an intra-cortically controlled FES prosthesis for grasp
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