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Edge Computing Based IoT Architecture for Low Cost Air Pollution Monitoring Systems: A Comprehensive System Analysis Design Considerations Development

机译:低成本空气污染监测系统的基于边缘计算的物联网架构:全面的系统分析设计考虑与开发

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摘要

With the swift growth in commerce and transportation in the modern civilization, much attention has been paid to air quality monitoring, however existing monitoring systems are unable to provide sufficient spatial and temporal resolutions of the data with cost efficient and real time solutions. In this paper we have investigated the issues, infrastructure, computational complexity, and procedures of designing and implementing real-time air quality monitoring systems. To daze the defects of the existing monitoring systems and to decrease the overall cost, this paper devised a novel approach to implement the air quality monitoring system, employing the edge-computing based Internet-of-Things (IoT). In the proposed method, sensors gather the air quality data in real time and transmit it to the edge computing device that performs necessary processing and analysis. The complete infrastructure & prototype for evaluation is developed over the Arduino board and IBM Watson IoT platform. Our model is structured in such a way that it reduces the computational burden over sensing nodes (reduced to 70%) that is battery powered and balanced it with edge computing device that has its local data base and can be powered up directly as it is deployed indoor. Algorithms were employed to avoid temporary errors in low cost sensor, and to manage cross sensitivity problems. Automatic calibration is set up to ensure the accuracy of the sensors reporting, hence achieving data accuracy around 75–80% under different circumstances. In addition, a data transmission strategy is applied to minimize the redundant network traffic and power consumption. Our model acquires a power consumption reduction up to 23% with a significant low cost. Experimental evaluations were performed under different scenarios to validate the system’s effectiveness.
机译:随着现代文明中商业和运输业的迅猛发展,人们对空气质量的监测给予了极大的关注,但是现有的监测系统无法通过具有成本效益的实时解决方案来提供足够的数据时空分辨率。在本文中,我们研究了问题,基础设施,计算复杂性以及设计和实施实时空气质量监测系统的程序。为了消除现有监测系统的缺陷并降低总体成本,本文设计了一种新颖的方法,即采用基于边缘计算的物联网(IoT)来实现空气质量监测系统。在提出的方法中,传感器实时收集空气质量数据并将其传输到边缘计算设备,以执行必要的处理和分析。评估的完整基础架构和原型是通过Arduino板和IBM Watson IoT平台开发的。我们的模型以这样的方式构造:它减轻了电池供电的传感节点的计算负担(降低至70%),并与具有本地数据库并可在部署时直接加电的边缘计算设备进行了平衡室内。使用算法来避免低成本传感器中的临时错误,并管理交叉灵敏度问题。设置了自动校准以确保传感器报告的准确性,因此在不同情况下可达到约75–80%的数据准确性。此外,采用了一种数据传输策略以最大程度地减少冗余网络流量和功耗。我们的模型以极低的成本实现了高达23%的功耗降低。在不同情况下进行了实验评估,以验证系统的有效性。

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