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数字化身的寿命期神经认知发展与触觉互联网:跨学科挑战与机遇

Digitally embodied lifespan neurocognitive development and Tactile Internet: Transdisciplinary challenges and opportunities.

作者信息

Li Shu-Chen, Fitzek Frank H P

机构信息

Chair of Lifespan Developmental Neuroscience, Faculty of Psychology, Technische Universität Dresden, Dresden, Germany.

Centre for Tactile Internet With Human-in-the-Loop, Technische Universität Dresden, Dresden, Germany.

出版信息

Front Hum Neurosci. 2023 Feb 10;17:1116501. doi: 10.3389/fnhum.2023.1116501. eCollection 2023.

Abstract

Mechanisms underlying perceptual processing and inference undergo substantial changes across the lifespan. If utilized properly, technologies could support and buffer the relatively more limited neurocognitive functions in the still developing or aging brains. Over the past decade, a new type of digital communication infrastructure, known as the "Tactile Internet (TI)," is emerging in the fields of telecommunication, sensor and actuator technologies and machine learning. A key aim of the TI is to enable humans to experience and interact with remote and virtual environments through digitalized multimodal sensory signals that also include the haptic (tactile and kinesthetic) sense. Besides their applied focus, such technologies may offer new opportunities for the research tapping into mechanisms of digitally embodied perception and cognition as well as how they may differ across age cohorts. However, there are challenges in translating empirical findings and theories about neurocognitive mechanisms of perception and lifespan development into the day-to-day practices of engineering research and technological development. On the one hand, the capacity and efficiency of digital communication are affected by signal transmission noise according to Shannon's (1949) Information Theory. On the other hand, neurotransmitters, which have been postulated as means that regulate the signal-to-noise ratio of neural information processing (e.g., Servan-Schreiber et al., 1990), decline substantially during aging. Thus, here we highlight neuronal gain control of perceptual processing and perceptual inference to illustrate potential interfaces for developing age-adjusted technologies to enable plausible multisensory digital embodiments for perceptual and cognitive interactions in remote or virtual environments.

摘要

感知处理和推理的潜在机制在整个生命周期中会发生重大变化。如果使用得当,技术可以支持并缓冲仍在发育或衰老的大脑中相对较为有限的神经认知功能。在过去十年中,一种新型的数字通信基础设施,即“触觉互联网(TI)”,正在电信、传感器和致动器技术以及机器学习领域中兴起。TI的一个关键目标是使人类能够通过数字化的多模态感官信号体验远程和虚拟环境并与之交互,这些信号还包括触觉(触觉和动觉)感知。除了其应用重点外,此类技术可能为研究数字化体现的感知和认知机制以及它们在不同年龄组中的差异提供新机会。然而,将关于感知和生命周期发展的神经认知机制的实证研究结果和理论转化为工程研究和技术开发的日常实践存在挑战。一方面,根据香农(1949年)的信息理论,数字通信的容量和效率会受到信号传输噪声的影响。另一方面,神经递质被认为是调节神经信息处理信噪比的手段(例如,塞尔万-施赖伯等人,1990年),在衰老过程中会大幅下降。因此,在这里我们强调感知处理和感知推理的神经元增益控制,以说明开发年龄调整技术的潜在接口,从而在远程或虚拟环境中实现合理的多感官数字体现,用于感知和认知交互。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6979/9950571/88318b852c07/fnhum-17-1116501-g001.jpg

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