基于机器学习和物联网的疾病预测和警报生成系统

Nidhi Kundu, Geeta Rani, V. Dhaka
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引用次数: 9

摘要

健康市场的迅速扩大和心血管、神经和肺、睡眠、水合作用和呼吸频率紊乱等常见健康问题的增加促使研究人员在开发和设计准确观察身体参数分析的系统方面做出贡献,其中监测参数的值,并在值显示偏离标准预设值时产生警报。这种监测有助于早期发现慢性疾病,如糖尿病、心脏病、呼吸系统疾病。文献中描述的设备面临着低可靠性、低准确性和低能效等挑战。在这份手稿中,作者提出了现有的文献综述,可在国家和国际层面。该综述主要关注可穿戴设备,如智能眼镜、智能腕带、智能珠宝、睡眠追踪器、智能服装和头戴式设备等。审查确定的挑战,促使作者专注于设计一个健康监测框架工作。在这篇手稿中,作者提出了一个基于机器学习和物联网的疾病预测和警报生成系统。系统的易用性和高可靠性证明了系统在实时场景中的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning and IoT based Disease Predictor and Alert Generator System
Rapidly expanding market of health and increase in the common health issues such as cardiovascular, neurological and pulmonary, sleep, hydration and breath rate disorders motivates researchers to contribute in developing as well as designing systems that accurately observes the body parameter analyses, where the values of monitored parameters and generates alerts if the values show deviation from the standard pre-set values. The monitoring helps in early detection of chronic diseases such as diabetes, heart, respiratory disorders. Devices described in literature faces the challenges such as low reliability, low accuracy and less energy efficient. In this manuscript, authors present a review of existing literature available at national as well as international level. The review focuses on wearable devices such as smart eyewear, wrist band, smart jewelry, sleep track, smart garments and head mounted etc. The challenges identified by the review, motivates the authors to focus on designing a health monitoring frame work. In this manuscript, the authors propose a Machine Learning and IoT based Disease Predictor and Alert Generator System. The ease to use and high reliability proves the usefulness of system in the real time scenario.
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