用于糖尿病患者监测的智能压力和温度传感器算法:物联网方法

Mohd Izzat Nordin, Mohamad Khairi Ishak, Abdul Sattar Din, Mohamad Tarmizi Abu Seman
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引用次数: 2

摘要

本研究评估了基于物联网(IoT)的创新算法如何利用特征值来识别不同的足底位置。拟议的系统还能通过增强的特征提取方法评估静态和动态足底压力状况。这项研究强调了智能系统在监测糖尿病患者方面的重要性及其改善患者生活的潜力。所提出的以物联网为中心的方法为准确确定独特的足部位置和足底压力参数提供了一种有前途的解决方案。通过优化特征提取,该算法可以提前预测潜在的糖尿病问题,从而帮助进行主动干预。现有系统需要改进,以提供实时数据。此外,基本警报可能会对用户造成困扰。因此,本研究提出了一种更加个性化和情境感知的监测设备。研究结果为糖尿病患者护理中的创新传感器应用提供了见解,并强调了物联网在提高系统准确性和可靠性方面的作用。
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Intelligent pressure and temperature sensor algorithm for diabetic patient monitoring: An IoT approach
The present study evaluated how an Internet of Things (IoT)-based innovative algorithm could employ feature values to identify distinct plantar foot locations. The proposed system could also assess static and dynamic plantar pressure conditions through an enhanced feature extraction method. This study emphasized the significance of intelligent systems in monitoring diabetic patients and their potential to improve patients' lives. The proposed IoT-centred approach offers a promising solution for accurately determining unique foot locations and plantar pressure parameters. The algorithm could predict potential diabetic issues in advance via an optimized feature extraction, aiding proactive interventions. Available systems need to be improved to provide real-time data. Furthermore, fundamental alerts might be a nuisance for the users. Consequently, this study proposes a more personalized and context-aware monitoring device. The findings provided insights into innovative sensor employment in diabetic patient care and underscored IoT's role in refining the system's accuracy and reliability.
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