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通过解码四肢瘫痪患者的运动皮层尖峰活动实现对计算机光标速度的神经控制。

Neural control of computer cursor velocity by decoding motor cortical spiking activity in humans with tetraplegia.

作者信息

Kim Sung-Phil, Simeral John D, Hochberg Leigh R, Donoghue John P, Black Michael J

机构信息

Department of Computer Science, Brown University, Box 1910, 115 Waterman St, Providence, RI 02912, USA.

出版信息

J Neural Eng. 2008 Dec;5(4):455-76. doi: 10.1088/1741-2560/5/4/010. Epub 2008 Nov 18.

Abstract

Computer-mediated connections between human motor cortical neurons and assistive devices promise to improve or restore lost function in people with paralysis. Recently, a pilot clinical study of an intracortical neural interface system demonstrated that a tetraplegic human was able to obtain continuous two-dimensional control of a computer cursor using neural activity recorded from his motor cortex. This control, however, was not sufficiently accurate for reliable use in many common computer control tasks. Here, we studied several central design choices for such a system including the kinematic representation for cursor movement, the decoding method that translates neuronal ensemble spiking activity into a control signal and the cursor control task used during training for optimizing the parameters of the decoding method. In two tetraplegic participants, we found that controlling a cursor's velocity resulted in more accurate closed-loop control than controlling its position directly and that cursor velocity control was achieved more rapidly than position control. Control quality was further improved over conventional linear filters by using a probabilistic method, the Kalman filter, to decode human motor cortical activity. Performance assessment based on standard metrics used for the evaluation of a wide range of pointing devices demonstrated significantly improved cursor control with velocity rather than position decoding.

摘要

人类运动皮层神经元与辅助设备之间通过计算机介导的连接,有望改善或恢复瘫痪患者丧失的功能。最近,一项关于皮层内神经接口系统的初步临床研究表明,一名四肢瘫痪患者能够利用从其运动皮层记录的神经活动,对计算机光标进行连续的二维控制。然而,这种控制在许多常见的计算机控制任务中,其准确性不足以可靠使用。在此,我们研究了此类系统的几个核心设计选择,包括光标移动的运动学表示、将神经元群体脉冲活动转化为控制信号的解码方法,以及在训练期间用于优化解码方法参数的光标控制任务。在两名四肢瘫痪参与者中,我们发现控制光标速度比直接控制其位置能实现更精确的闭环控制,并且光标速度控制比位置控制实现得更快。通过使用概率方法——卡尔曼滤波器来解码人类运动皮层活动,控制质量相对于传统线性滤波器有了进一步提高。基于用于评估各种指向设备的标准指标进行的性能评估表明,采用速度解码而非位置解码时,光标控制有了显著改善。

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