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首页> 外文期刊>Environmental Monitoring and Assessment >Spatial estimation of surface ozone concentrations in Quito Ecuador with remote sensing data, air pollution measurements and meteorological variables
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Spatial estimation of surface ozone concentrations in Quito Ecuador with remote sensing data, air pollution measurements and meteorological variables

机译:利用遥感数据,空气污染测量值和气象变量估算厄瓜多尔基多表面臭氧浓度的空间

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摘要

Surface ozone is problematic to air pollution. It influences respiratory health. The air quality monitoring stations measure pollutants as surface ozone, but they are sometimes insufficient or do not have an adequate distribution for understanding the spatial distribution of pollutants in an urban area. In recent years, some projects have found a connection between remote sensing, air quality and health data. In this study, we apply an empirical land use regression (LUR) model to retrieve surface ozone in Quito. The model considers remote sensing data, air pollution measurements and meteorological variables. The objective is to use all available Landsat 8 images from 2014 and the air quality monitoring station data during the same dates of image acquisition. Nineteen input variables were considered, selecting by a stepwise regression and modelling with a partial least square (PLS) regression to avoid multicollinearity. The final surface ozone model includes ten independent variables and presents a coefficient of determination (R-2) of 0.768. The model proposed help to understand the spatial concentration of surface ozone in Quito with a better spatial resolution.
机译:表面臭氧对空气污染是有问题的。它影响呼吸健康。空气质量监测站将污染物作为表面臭氧进行测量,但有时不足或分布不充分,无法理解市区内污染物的空间分布。近年来,一些项目发现遥感,空气质量和健康数据之间存在联系。在这项研究中,我们应用经验土地利用回归(LUR)模型来检索基多的地表臭氧。该模型考虑了遥感数据,空气污染测量值和气象变量。目标是在图像采集的同一日期使用2014年以来所有可用的Landsat 8图像和空气质量监测站数据。考虑了19个输入变量,通过逐步回归进行选择并使用偏最小二乘(PLS)回归进行建模以避免多重共线性。最终的表面臭氧模型包括十个独立变量,确定系数(R-2)为0.768。提出的模型有助于以更好的空间分辨率了解基多地表臭氧的空间浓度。

著录项

  • 来源
    《Environmental Monitoring and Assessment》 |2019年第3期|155.1-155.15|共15页
  • 作者单位

    Univ Porto, Fac Sci, Dept Geosci Environm & Land Planning, Rua Campo Alegre 687, P-4169007 Porto, Portugal|Univ Politecn Salesiana, Grp Invest Ambiental Desarrollo Sustentable GIADE, Carrera Ingn Ambiental, Quito, Ecuador;

    Univ Porto, Fac Sci, Dept Geosci Environm & Land Planning, Rua Campo Alegre 687, P-4169007 Porto, Portugal|Univ Porto, Pole FCUP, Earth Sci Inst ICT, Porto, Portugal;

    Univ Politecn Salesiana, Grp Invest Ambiental Desarrollo Sustentable GIADE, Carrera Ingn Ambiental, Quito, Ecuador;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Landsat 8; Quito; Ozone; PLS; Air modelling;

    机译:Landsat 8;Quito;臭氧;PLS;空气建模;

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