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Combining decoder design and neural adaptation in brain-machine interfaces

机译:在人机界面中将解码器设计与神经适应相结合

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Brain-machine interfaces (BMIs) aim to help people with paralysis by decoding movement-related neural signals into control signals for guiding computer cursors, prosthetic arms, and other assistive devices. Despite compelling laboratory experiments and ongoing FDA pilot clinical trials, system performance, robustness, and generalization remain challenges. We provide a perspective on how two complementary lines of investigation, that have focused on decoder design and neural adaptation largely separately, could be brought together to advance BMIs. This BMI paradigm should also yield new scientific insights into the function and dysfunction of the nervous system. Video Abstract: Shenoy and Carmena provide a perspective on how two complementary lines of investigation, that have focused on decoder design and neural adaptation largely separately, could be brought together to advance BMIs.
机译:脑机接口(BMI)旨在通过将与运动有关的神经信号解码为控制信号,以引导计算机光标,假肢和其他辅助设备来帮助瘫痪的人。尽管有引人注目的实验室实验和正在进行的FDA试点临床试验,但系统性能,鲁棒性和通用性仍然是挑战。我们提供了一个观点,即如何将两条主要围绕解码器设计和神经适应性的互补研究线放在一起,以提高BMI。这种BMI范例还应该对神经系统的功能和功能障碍产生新的科学见解。视频摘要:Shenoy和Carmena提供了一个视角,探讨如何将两条主要围绕解码器设计和神经适应性的互补研究线放在一起,以提高BMI。

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