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神经仿生学和脑机接口:当前应用和未来前景。

Neurobionics and the brain-computer interface: current applications and future horizons.

机构信息

Monash Institute of Medical Engineering, Monash University, Melbourne, VIC

Electrical and Computer Systems Engineering, University of Melbourne, Melbourne, VIC.

出版信息

Med J Aust. 2017 May 1;206(8):363-368. doi: 10.5694/mja16.01011.

Abstract

The brain-computer interface (BCI) is an exciting advance in neuroscience and engineering. In a motor BCI, electrical recordings from the motor cortex of paralysed humans are decoded by a computer and used to drive robotic arms or to restore movement in a paralysed hand by stimulating the muscles in the forearm. Simultaneously integrating a BCI with the sensory cortex will further enhance dexterity and fine control. BCIs are also being developed to: provide ambulation for paraplegic patients through controlling robotic exoskeletons; restore vision in people with acquired blindness; detect and control epileptic seizures; and improve control of movement disorders and memory enhancement. High-fidelity connectivity with small groups of neurons requires microelectrode placement in the cerebral cortex. Electrodes placed on the cortical surface are less invasive but produce inferior fidelity. Scalp surface recording using electroencephalography is much less precise. BCI technology is still in an early phase of development and awaits further technical improvements and larger multicentre clinical trials before wider clinical application and impact on the care of people with disabilities. There are also many ethical challenges to explore as this technology evolves.

摘要

脑机接口(BCI)是神经科学和工程学的一项令人兴奋的进步。在运动脑机接口中,来自瘫痪患者运动皮层的电记录由计算机解码,并用于通过刺激前臂肌肉来驱动机器人手臂或恢复瘫痪手的运动。同时将 BCI 与感觉皮层集成,将进一步提高灵巧性和精细控制。BCIs 也正在开发中,以通过控制机器人外骨骼为截瘫患者提供行走能力;为获得性失明的人恢复视力;检测和控制癫痫发作;以及改善运动障碍的控制和增强记忆力。与小群神经元的高保真连接需要将微电极放置在大脑皮层中。放置在皮层表面的电极侵入性较小,但保真度较低。使用脑电图的头皮表面记录则精确性差得多。BCI 技术仍处于早期发展阶段,需要进一步的技术改进和更大规模的多中心临床试验,然后才能更广泛地应用于临床并对残疾人士的护理产生影响。随着这项技术的发展,也有许多伦理挑战需要探索。

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