人类启发的触觉感知系统,用于实时和多模态检测触觉刺激。

Soft robotics Pub Date : 2024-04-01 Epub Date: 2023-12-18 DOI:10.1089/soro.2022.0191
Bo-Yeon Lee, Seonggi Kim, Sunjong Oh, Youngoh Lee, Jonghwa Park, Hyunhyub Ko, Ja Choon Koo, Youngdo Jung, Hyuneui Lim
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引用次数: 0

摘要

人类能够直观地感知和理解复杂的触觉信息,是因为分布在指尖皮肤上的皮肤感受器能同时接收不同的触觉刺激,并立即将触觉信号传递给大脑。尽管许多研究小组都在尝试模仿人类皮肤的结构和功能,但要在一个系统内实现类似人类的触觉感知过程仍是一个挑战。在这项研究中,我们利用多个传感器、一个信号处理和传输电路模块以及一个信号分析模块,开发了一个实时多模态触觉系统,该系统模仿了皮肤感受器的功能,以及感受器向大脑传递触觉刺激的过程。所提出的系统能够以紧凑的系统同时获取四种解耦触觉信息,从而能够区分各种触觉刺激、纹理特征和连续的复杂运动。这种类似皮肤的三维集成设计为多模态触觉传感系统提供了更多机会。
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Human-Inspired Tactile Perception System for Real-Time and Multimodal Detection of Tactile Stimuli.

A human can intuitively perceive and comprehend complicated tactile information because the cutaneous receptors distributed in the fingertip skin receive different tactile stimuli simultaneously and the tactile signals are immediately transmitted to the brain. Although many research groups have attempted to mimic the structure and function of human skin, it remains a challenge to implement human-like tactile perception process inside one system. In this study, we developed a real-time and multimodal tactile system that mimics the function of cutaneous receptors and the transduction of tactile stimuli from receptors to the brain, by using multiple sensors, a signal processing and transmission circuit module, and a signal analysis module. The proposed system is capable of simultaneously acquiring four types of decoupled tactile information with a compact system, thereby enabling differentiation between various tactile stimuli, texture characteristics, and consecutive complex motions. This skin-like three-dimensional integrated design provides further opportunities in multimodal tactile sensing systems.

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