IOT-Based Smart Helmet for COVID-19 Detection and Management

Foziah Gazzawe
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引用次数: 0

Abstract

: Covid-19 is one of the pandemics that has shocked the world. Having originated from China, the virus rapidly spread across many countries of the world. There was a need to come up with mechanisms to manage the spread of the virus. The traditional methods of temperature capture through thermal handheld gun thermometers were tedious and exposed the officers to the same virus. Therefore, due to technological advancement, the Internet of Things has been widely used with smart devices being developed. This study proposes an IoT-enabled smart helmet that scans individuals for high temperatures using a thermal camera, identifies individuals by capturing their images using an optical camera, and sends alerts and information to authorized officers’ decision-making and further action. For instance, they would notify the identified individual and give guidelines on how to self-manage based on the COVID-19 management guidelines such as quarantine, exercise, self-distance, handwashing, sanitizing, and dietary needs. The integration of technologies in the smart helmet application is beneficial in addressing safety measures and enhanced healthcare and monitoring of patients. For instance, in crowded areas, manual testing can be challenging hence the need for a contactless screening. The implications in real-time data analysis, concurrency, Human-Computer Interaction, remote monitoring, data security, and interdisciplinary collaboration have enhanced operation and decision-making. The knowledge, once tested, will form the basis for advanced research and implementations in various domains such as manufacturing industries. The methodology involved data capture (input), processing, and output. Materials used include thermal and optical cameras for data input, GSM and Google location applications, Arduino IDE, and mobile phone applications. The study used simulation at a mall's entry point and captured the temperature of 8 individuals. Out of the 8 individuals, 3 had high temperatures whereas the rest registered normal temperatures. Temperature measurements were verified by healthcare personnel through a second measure of temperature.
基于物联网的智能头盔用于 COVID-19 检测和管理
:Covid-19 是震惊世界的流行病之一。该病毒源于中国,迅速蔓延到世界许多国家。因此,需要建立一种机制来控制病毒的传播。通过热敏手持式枪式温度计采集体温的传统方法十分繁琐,而且会使工作人员感染同样的病毒。因此,随着技术的进步,物联网得到了广泛应用,智能设备也在不断发展。本研究提出了一种支持物联网的智能头盔,该头盔可使用热像仪扫描个人是否体温过高,通过使用光学相机捕捉个人图像来识别个人,并发送警报和信息供授权人员决策和采取进一步行动。例如,他们会通知被识别的个人,并根据 COVID-19 管理指南提供如何自我管理的指导,如隔离、运动、自我远离、洗手、消毒和饮食需求等。智能头盔应用中的技术集成有利于采取安全措施,加强对患者的医疗保健和监测。例如,在人群拥挤的地区,人工检测可能具有挑战性,因此需要非接触式筛查。实时数据分析、并发性、人机交互、远程监控、数据安全和跨学科合作等方面的影响都加强了操作和决策。这些知识一旦经过测试,将成为在制造业等各个领域开展高级研究和实施的基础。该方法涉及数据采集(输入)、处理和输出。使用的材料包括用于数据输入的热像仪和光学相机、GSM 和谷歌定位应用程序、Arduino 集成开发环境和手机应用程序。研究在商场入口处进行了模拟,采集了 8 个人的体温。8 人中有 3 人体温偏高,其他人体温正常。体温测量结果由医护人员通过第二次体温测量进行验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Computer Science
Journal of Computer Science Computer Science-Computer Networks and Communications
CiteScore
1.70
自引率
0.00%
发文量
92
期刊介绍: Journal of Computer Science is aimed to publish research articles on theoretical foundations of information and computation, and of practical techniques for their implementation and application in computer systems. JCS updated twelve times a year and is a peer reviewed journal covers the latest and most compelling research of the time.
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