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An Approximation for Metal-Oxide Sensor Calibration for Air Quality Monitoring Using Multivariable Statistical Analysis

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URI: http://hdl.handle.net/10498/25603

DOI: 10.3390/s21144781

ISSN: 1424-8220

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Author/s
Sales Lérida, DiegoAuthority UCA; Bello Espina, Alfonso JoséAuthority UCA; Sánchez Alzola, AlbertoAuthority UCA; Martínez Jiménez, Pedro ManuelAuthority UCA
Date
2021-07
Department
Estadística e Investigación Operativa; Ingeniería en Automática, Electrónica, Arquitectura y Redes de Computadores
Source
Sensors 2021, 21(14), 4781
Abstract
Good air quality is essential for both human beings and the environment in general. The three most harmful air pollutants are nitrogen dioxide (NO2), ozone (O-3) and particulate matter. Due to the high cost of monitoring stations, few examples of this type of infrastructure exist, and the use of low-cost sensors could help in air quality monitoring. The cost of metal-oxide sensors (MOS) is usually below EUR 10 and they maintain small dimensions, but their use in air quality monitoring is only valid through an exhaustive calibration process and subsequent precision analysis. We present an on-field calibration technique, based on the least squares method, to fit regression models for low-cost MOS sensors, one that has two main advantages: it can be easily applied by non-expert operators, and it can be used even with only a small amount of calibration data. In addition, the proposed method is adaptive, and the calibration can be refined as more data becomes available. We apply and evaluate the technique with a real dataset from a particular area in the south of Spain (Granada city). The evaluation results show that, despite the simplicity of the technique and the low quantity of data, the accuracy obtained with the low-cost MOS sensors is high enough to be used for air quality monitoring.
Subjects
air air quality; metal-oxide sensor; monitoring; multivariable regression models; model calibration
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