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Multimodal Neural Interfaces for Augmenting Human Cognition

机译:用于增强人类认知的多模式神经接口

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Within the next decade multimodal neural interfaces (MNI's) could begin to transform society by expanding human cognitive abilities. Embodiments of such interfaces will include a combination of biometric and environmental sensors working in cooperation with noninvasive brain stimulation or neuromodulation devices to optimize human cognitive processes. These MNI's may, for example, monitor psychophysiological arousal using pupillometry and responsively stimulate noradrenergic activity in a manner to enhance sustained attention or vigilance. Other near-term applications may include MNI's that are designed to enable an individual to maintain a particular state of calm or flow state during stressful tasks by using algorithms to generate auricular vagal nerve stimulation waveforms based on real-time heart rate variability and electroencephalography data. Numerous other possibilities remain. The present paper provides a brief overview of several different types of biometric sensors and the neurophysiological systems they can monitor. This information is provided in context of their present limitations, as well as how neurophysiological sensors may be used in combination with noninvasive brain stimulation (NIBS) methods to augment human cognition and performance. Overall the paper attempts to provide a balanced and realistic examination of the issues remaining to be solved or addressed in order to reliably enhance human cognition. Efforts that combine high quality sensors for monitoring neurophysiological signatures of attention and psychophysiological markers of arousal with scientifically-grounded neurostimulation approaches in an integrated MNI solution will be necessary to achieve reliable and reproducible cognitive augmentation facilitated by future MNI's.
机译:在接下来的十年内,多峰神经接口(MNI)可能会通过扩大人类的认知能力来开始改变社会。此类接口的实施例将包括与非侵入性脑刺激或神经调节装置协作以优化人类认知过程的生物识别传感器和环境传感器的组合。这些MNI可以例如使用瞳孔测量法监测心理生理唤醒,并以增强持续注意力或警惕性的方式响应性刺激去甲肾上腺素能活动。其他近期应用可能包括MNI,这些MNI旨在通过使用基于实时心率变异性和脑电图数据生成耳迷走神经刺激波形的算法,使个人在压力任务期间能够保持特定的平静状态或流动状态。还有许多其他可能性。本文简要概述了几种不同类型的生物特征传感器及其可以监视的神经生理系统。在当前存在局限性以及如何将神经生理传感器与无创性脑刺激(NIBS)方法结合使用以增强人类认知和表现的情况下提供此信息。总体而言,本文试图对仍需解决或解决的问题进行平衡和现实的考察,以可靠地增强人类的认知度。在集成的MNI解决方案中,将高质量的传感器(用于监视注意力的神经生理信号和唤醒的心理生理标志)与科学依据的神经刺激方法相结合的努力,对于实现未来MNI促进的可靠且可再现的认知增强是必不可少的。

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