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在漂移流形上对表征进行灵活调节可实现长期稳定的复杂神经假体控制。

Flexible regulation of representations on a drifting manifold enables long-term stable complex neuroprosthetic control.

作者信息

Natraj Nikhilesh, Seko Sarah, Abiri Reza, Yan Hongyi, Graham Yasmin, Tu-Chan Adelyn, Chang Edward F, Ganguly Karunesh

机构信息

Dept. of Neurology, Weill Institute for Neurosciences, University of California San Francisco, San Francisco, California, USA.

UCSF - Veteran Affairs Medical Center, San Francisco, California, USA.

出版信息

bioRxiv. 2023 Aug 14:2023.08.11.551770. doi: 10.1101/2023.08.11.551770.

Abstract

The nervous system needs to balance the stability of neural representations with plasticity. It is unclear what is the representational stability of simple actions, particularly those that are well-rehearsed in humans, and how it changes in new contexts. Using an electrocorticography brain-computer interface (BCI), we found that the mesoscale manifold and relative representational distances for a repertoire of simple imagined movements were remarkably stable. Interestingly, however, the manifold's absolute location demonstrated day-to-day drift. Strikingly, representational statistics, especially variance, could be flexibly regulated to increase discernability during BCI control without somatotopic changes. Discernability strengthened with practice and was specific to the BCI, demonstrating remarkable contextual specificity. Accounting for drift, and leveraging the flexibility of representations, allowed neuroprosthetic control of a robotic arm and hand for over 7 months without recalibration. Our study offers insight into how electrocorticography can both track representational statistics across long periods and allow long-term complex neuroprosthetic control.

摘要

神经系统需要在神经表征的稳定性与可塑性之间取得平衡。目前尚不清楚简单动作的表征稳定性如何,尤其是那些在人类中经过充分排练的动作,以及在新环境中它是如何变化的。通过使用皮层脑电图脑机接口(BCI),我们发现一系列简单想象动作的中尺度流形和相对表征距离非常稳定。然而,有趣的是,流形的绝对位置表现出每日漂移。引人注目的是,在不发生躯体定位变化的情况下,表征统计数据,尤其是方差,可以被灵活调节以增加BCI控制期间的可辨别性。可辨别性随着练习而增强,并且是BCI特有的,表现出显著的情境特异性。考虑到漂移,并利用表征的灵活性,实现了对机器人手臂和手部的神经假体控制超过7个月而无需重新校准。我们的研究为皮层脑电图如何既能长期跟踪表征统计数据又能实现长期复杂的神经假体控制提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb59/10462094/50091775eecd/nihpp-2023.08.11.551770v1-f0001.jpg

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