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首页> 外文期刊>Journal of neural engineering >Ten-dimensional anthropomorphic arm control in a human brain-machine interface: difficulties,solutions,and limitations
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Ten-dimensional anthropomorphic arm control in a human brain-machine interface: difficulties,solutions,and limitations

机译:人脑-机器界面中的十维拟人化手臂控制:困难,解决方案和局限性

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摘要

Objective. In a previous study we demonstrated continuous translation, orientation and one-dimensional grasping control of a prosthetic limb (seven degrees of freedom) by a human subject with tetraplegia using a brain-machine interface (BMI). The current study, in the same subject, immediately followed the previous work and expanded the scope of the control signal by also extracting hand-shape commands from the two 96-channel intracortical electrode arrays implanted in the subject's left motor cortex. Approach. Four new control signals, dictating prosthetic hand shape, replaced the one-dimensional grasping in the previous study, allowing the subject to control the prosthetic limb with ten degrees of freedom (three-dimensional (3D) translation, 3D orientation, four-dimensional hand shaping) simultaneously. Main results. Robust neural tuning to hand shaping was found, leading to ten-dimensional (10D) performance well above chance levels in all tests. Neural unit preferred directions were broadly distributed through the 10D space, with the majority of units significantly tuned to all ten dimensions, instead of being restricted to isolated domains (e.g. translation, orientation or hand shape). The addition of hand shaping emphasized object-interaction behavior. A fundamental component of BMIs is the calibration used to associate neural activity to intended movement. We found that the presence of an object during calibration enhanced successful shaping of the prosthetic hand as it closed around the object during grasping. Significance. Our results show that individual motor cortical neurons encode many parameters of movement, that object interaction is an important factor when extracting these signals, and that high-dimensional operation of prosthetic devices can be achieved with simple decoding algorithms. ClinicalTrials.gov Identifier: NCT01364480.
机译:目的。在先前的研究中,我们证明了四肢瘫痪的人类受试者使用脑机接口(BMI)对假肢进行连续的平移,定向和一维抓握控制(七个自由度)。在同一受试者中的当前研究,紧随先前的工作,并通过从植入受试者左运动皮层的两个96通道皮质内电极阵列中提取手形指令来扩展控制信号的范围。方法。四个新的控制信号,决定了假手的形状,取代了先前研究中的一维抓握,使受试者能够以十个自由度来控制假肢(三维(3D)平移,3D方向,四维手整形)。主要结果。发现了针对手整形的鲁棒神经调整,导致所有测试中的十维(10D)性能都大大高于偶然水平。神经单位的首选方向在10D空间中广泛分布,大多数单位都被显着调整到所有十个维度,而不是局限于孤立的区域(例如平移,方向或手形)。手工成型的添加强调了对象交互行为。 BMI的基本组成部分是用于将神经活动与预期运动相关联的校准。我们发现,在校准过程中物体的存在会增强假手的形状,因为假手在抓握过程中会围绕物体闭合。意义。我们的结果表明,单个运动皮层神经元编码许多运动参数,对象交互是提取这些信号时的重要因素,并且可以通过简单的解码算法来实现假体设备的高维操作。 ClinicalTrials.gov标识符:NCT01364480。

著录项

  • 来源
    《Journal of neural engineering》 |2015年第1期|195-211|共17页
  • 作者单位

    Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, PA, USA,Center for the Neural Basis of Cognition, Pittsburgh, PA, USA;

    Center for the Neural Basis of Cognition, Pittsburgh, PA, USA,Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USA;

    Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, PA, USA,Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USA,Department of Neurological Surgery, University of Pittsburgh, Pittsburgh, PA, USA,McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA, USA;

    Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, PA, USA,Center for the Neural Basis of Cognition, Pittsburgh, PA, USA,Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USA,McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA, USA,Systems Neuroscience Institute, University of Pittsburgh, Pittsburgh, PA, USA,Department of Neurobiology, University of Pittsburgh, Pittsburgh, PA, USA;

    Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, PA, USA,Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USA,McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA, USA,Department of Veterans Affairs Medical Center, Pittsburgh, PA, USA;

    Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, PA, USA,Center for the Neural Basis of Cognition, Pittsburgh, PA, USA,Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA, USA,Department of Veterans Affairs Medical Center, Pittsburgh, PA, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    brain-machine interface; brain-computer interface; neuroprosthetics; motor cortex; intracortical; hand shaping; grasping;

    机译:脑机接口;脑机接口;神经假体运动皮层;皮质内手形抓;

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