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Development of a multiple regression model to calibrate a low-cost sensor considering reference measurements and meteorological parameters

机译:考虑参考测量和气象参数,开发多元回归模型以校准低成本传感器

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Low-cost air quality sensors are widely used to improve temporal and spatial resolution of air quality data. In Lima, Peru, only a limited number of reference air quality monitors have been installed, which has led to a lack of data for establishing environmental and health policies. Low-cost technology is promising for developing countries because it is small and inexpensive to operate and maintain. However, considerable work remains to be done to improve data quality. In this study, a low-cost sensor was installed with a reference monitor station as the first stage for the calibration process, and a multiple regression model was developed based on reference measurements as an outcome variable using sensor data, temperature, and relative humidity as the predictive parameters. The results show that this particular technology exhibits a promising performance in measuring PM(2.5)and PM10(particulate matter with diameter aerodynamic less than 2.5 mu m and 10 mu m, respectively); however, the correlation for PM(2.5)appears to be better. Temperature and relative humidity data from the sensor were only partially analyzed due to the evident low correlation with the reference meteorological data. The objective of this study is to begin analyzing the performance of low-cost sensors that have already been introduced to the Peruvian market and selecting those that perform better to provide for informed decision-making.
机译:低成本的空气质量传感器广泛用于提高空气质量数据的时间和空间分辨率。在秘鲁利马,只安装了有限数量的参考空气质量监视器,这导致缺乏建立环境和健康政策的数据。低成本技术对发展中国家有前途,因为运营和维护很小而且廉价。但是,仍有相当大的工作来提高数据质量。在该研究中,用参考监视器站安装低成本传感器作为校准过程的第一阶段,并且基于使用传感器数据,温度和相对湿度的参考测量作为结果变量,开发了多元回归模型预测参数。结果表明,该特定技术在测量PM(2.5)和PM10(分别分别小于2.5μm和10μm的颗粒物质的颗粒物质)方面表现出有希望的性能;然而,PM(2.5)的相关性似乎更好。由于与参考气象数据的明显低相关,因此仅部分分析来自传感器的温度和相对湿度数据。本研究的目的是开始分析已经被引入秘鲁市场的低成本传感器的性能,并选择更好地提供知情决策的那些。

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