准静电状态下的人-结构和人-结构-人相互作用。

Samyadip Sarkar, David Yang, Mayukh Nath, Arunashish Datta, Shovan Maity, Shreyas Sen
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引用次数: 0

摘要

配备电子设备的增强生活需要广泛的连接和低损耗的通信媒介,以便人类与周围的技术进行交互。然而,传统的基于辐射射频的通信需要无线配对以确保信息交换过程中的专一性,并且由于其广播性质,这些通信会吸收周围环境的能量。准静态体耦合通信的最新进展表明,利用导电物体(如人体)作为通信介质具有很大的前景。在这里,我们提出了一套基本的非辐射相互作用的模式,通过引导准静态信号通过导电结构之间的人与周围的电子设备。我们的方法提供了无配对的通信特异性和触摸时更低的路径损耗。在这里,我们提出了两种模式:与可穿戴设备的人机交互和人机交互。我们用数值电磁模拟和实验验证了我们的理论认识,以证明所提出方法的可行性。演示了音频信号的实时传输,采用基于人体通信的人-结构交互链接,以突出这项工作的实际影响。所提出的技术可以潜在地影响人机交互研究,包括增强生活和个性化医疗保健辅助技术的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Human-structure and human-structure-human interaction in electro-quasistatic regime.

Augmented living equipped with electronic devices requires widespread connectivity and a low-loss communication medium for humans to interact with ambient technologies. However, traditional radiative radio frequency-based communications require wireless pairing to ensure specificity during information exchange, and with their broadcasting nature, these incur energy absorption from the surroundings. Recent advancements in electroquasistatic body-coupled communication have shown great promise by utilizing conductive objects like the human body as a communication medium. Here we propose a fundamental set of modalities of non-radiative interaction by guiding electroquasistatic signals through conductive structures between humans and surrounding electronic devices. Our approach offers pairing-free communication specificity and lower path loss during touch. Here, we propose two modalities: Human-Structure Interaction and Human-Structure Human Interaction with wearable devices. We validate our theoretical understanding with numerical electromagnetic simulations and experiments to show the feasibility of the proposed approach. A demonstration of the real-time transfer of an audio signal employing an human body communications-based Human-Structure Interaction link is presented to highlight the practical impact of this work. The proposed techniques can potentially influence Human-Machine Interaction research, including the development of assistive technology for augmented living and personalized healthcare.

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