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Advantages and challenges of the implementation of a low-cost particulate matter monitoring system as a decision-making tool

机译:实施低成本颗粒物监测系统作为决策工具的优势和挑战

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The integration of monitoring technologies in the last decades has been a key factor in the development of new ways to track air pollutants and supplementing the network of traditional monitoring systems. In this regard, the appearance of affordable and accurate sensor devices to monitor air quality has made possible to obtain relevant data about the state of the air, and moreover, eminent institutions are interested in promoting the use of novel and more affordable tools for air pollution, such as the United States Environmental Protection Agency and European institutions, within a new approach to environmental surveillance, known as Next Generation Compliance and Enforcement technologies. On other hand, in order to get more reliable measurements, the use of machine learning to support adjustment or calibration process has been used in some studies to improve the performance of monitoring devices. On this paper, led by a group of specialists of the Chilean Superintendence of Environment (henceforth, SMA from its Spanish initials), a first approach case study related to the convenience of the usage of low-cost devices in environmental enforcement will be presented. The study was made in the Metropolitan Region of Santiago and considers the spatial distribution of different particulate matter sensors in the region. Some aspects regarding communication and technical issues are presented as well as the main findings about their performance. Results illustrate that low-cost sensors, aided by machine learning algorithms, could provide a reliable enough general screening of particulate matter within a large city, constituting a valuable decision-making tool for environmental oversight, as well as a powerful preventive and deterrent approach for compliance.
机译:在过去的几十年中,监控技术的集成一直是开发新方法来跟踪空气污染物并补充传统监控系统网络的关键因素。在这方面,价格合理的精确传感器设备的出现使监测空气质量成为可能,以获得有关空气状态的相关数据,此外,知名机构也有兴趣促进使用新颖且价格更便宜的空气污染工具。 (例如美国环境保护署和欧洲机构)采用一种新的环境监控方法,即下一代合规与执法技术。另一方面,为了获得更可靠的测量结果,在某些研究中使用了机器学习来支持调整或校准过程,以提高监视设备的性能。在本文中,由智利环境监管局(以下简称SMA,缩写为SMA)的专家组领导,将介绍与在环境执法中使用低成本设备的便利性相关的第一个方法案例研究。这项研究是在圣地亚哥大都会地区进行的,考虑了该地区不同颗粒物传感器的空间分布。介绍了有关通信和技术问题的一些方面,以及有关其性能的主要发现。结果表明,借助机器学习算法,低成本传感器可以对大城市中的颗粒物进行足够可靠的常规筛查,从而构成用于环境监督的有价值的决策工具,并且可以作为一种强有力的预防和威慑方法合规性。

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