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AI-Aided Gait Analysis with a Wearable Device Featuring a Hydrogel Sensor

机译:使用具有水凝胶传感器的可穿戴设备进行 AI 辅助步态分析

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摘要

Wearable devices have revolutionized real-time health monitoring, yet challenges persist in enhancing their flexibility, weight, and accuracy. This paper presents the development of a wearable device employing a conductive polyacrylamide–lithium chloride–MXene (PLM) hydrogel sensor, an electronic circuit, and artificial intelligence (AI) for gait monitoring. The PLM sensor includes tribo-negative polydimethylsiloxane (PDMS) and tribo-positive polyurethane (PU) layers, exhibiting extraordinary stretchability (317% strain) and durability (1000 cycles) while consistently delivering stable electrical signals. The wearable device weighs just 23 g and is strategically affixed to a knee brace, harnessing mechanical energy generated during knee motion which is converted into electrical signals. These signals are digitized and then analyzed using a one-dimensional (1D) convolutional neural network (CNN), achieving an impressive accuracy of 100% for the classification of four distinct gait patterns: standing, walking, jogging, and running. The wearable device demonstrates the potential for lightweight and energy-efficient sensing combined with AI analysis for advanced biomechanical monitoring in sports and healthcare applications.
机译:可穿戴设备彻底改变了实时健康监测,但在提高其灵活性、重量和准确性方面仍然存在挑战。本文介绍了一种可穿戴设备的开发,该设备采用导电聚丙烯酰胺-氯化锂-MXene (PLM) 水凝胶传感器、电子电路和人工智能 (AI) 进行步态监测。PLM 传感器包括摩擦优化负聚二甲基硅氧烷 (PDMS) 和摩擦优化聚氨酯 (PU) 层,具有非凡的拉伸性(317% 应变)和耐用性(1000 次循环),同时始终如一地提供稳定的电信号。这款可穿戴设备仅重 23 克,巧妙地固定在膝关节支架上,利用膝关节运动过程中产生的机械能转化为电信号。这些信号被数字化,然后使用一维 (1D) 卷积神经网络 (CNN) 进行分析,从而在四种不同步态模式(站立、行走、慢跑和跑步)的分类中实现了令人印象深刻的 100% 准确率。这款可穿戴设备展示了轻量级和高能效传感与 AI 分析相结合的潜力,用于运动和医疗保健应用中的高级生物力学监测。

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