Liquid-Metal-Based Multichannel Strain Sensor for Sign Language Gesture Classification Using Machine Learning

材料科学 手势 手语 符号(数学) 手势识别 人工智能 拉伤 模式识别(心理学) 计算机科学 语言学 医学 数学分析 哲学 数学 内科学
作者
Jing Zhang,Xiaoyang Zou,Z. Li,Colin Pak Yu Chan,King Wai Chiu Lai
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (4): 6957-6968
标识
DOI:10.1021/acsami.4c19102
摘要

Liquid metals are highly conductive like metallic materials and have excellent deformability due to their liquid state, making them rather promising for flexible and stretchable wearable sensors. However, patterning liquid metals on soft substrates has been a challenge due to high surface tension. In this paper, a new method is proposed to overcome the difficulties in fabricating liquid-state strain sensors. The method involves adding nickel powder particles to the liquid metal to maintain the liquid metal's fluidity while lowering the surface tension so that the liquid metal can be easily patterned on a soft substrate using magnets. With the addition of 12 wt % nickel powder (40 μm) to the liquid metal, a gauge factor of 5.17 can be achieved at 300% strain. In addition, by the integration of multiple strain sensors in a smart glove to monitor 14 joints of the human hand, 10 sign language gestures can be recognized by comparing the results of five different machine learning models, among which the quadratic discriminative analysis model can be accomplished with an accuracy rate of 100%. The magnetically patterned nickel-containing liquid-metal strain sensors proposed in this study have a wide range of applications in intelligent soft robots and human-machine interfaces.
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