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首页> 外文期刊>Advances in space research >Satellite remote sensing of fine particulate air pollutants over Indian mega cities
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Satellite remote sensing of fine particulate air pollutants over Indian mega cities

机译:卫星遥测印度大城市的细颗粒空气污染物

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摘要

In the backdrop of the need for high spatio-temporal resolution data on PM_(2.5) mass concentrations for health and epidemiological studies over India, empirical relations between Aerosol Optical Depth (AOD) and PM_(2.5) mass concentrations are established over five Indian mega cities. These relations are sought to predict the surface PM_(2.5) mass concentrations from high resolution columnar AOD datasets. Current study utilizes multi-city public domain PM_(2.5) data (from US Consulate and Embassy's air monitoring program) and MODIS AOD, spanning for almost four years. PM_(2.5) is found to be positively correlated with AOD. Station-wise linear regression analysis has shown spatially varying regression coefficients. Similar analysis has been repeated by eliminating data from the elevated aerosol prone seasons, which has improved the correlation coefficient. The impact of the day to day variability in the local meteorological conditions on the AOD-PM_(2.5) relationship has been explored by performing a multiple regression analysis. A cross-validation approach for the multiple regression analysis considering three years of data as training dataset and one-year data as validation dataset yielded an R value of ~0.63. The study was concluded by discussing the factors which can improve the relationship.
机译:在印度需要用于健康和流行病学研究的PM_(2.5)质量浓度的高时空分辨率数据的背景下,在五个印度洋上建立了气溶胶光学深度(AOD)和PM_(2.5)质量浓度之间的经验关系城市。寻求这些关系以从高分辨率柱状AOD数据集预测表面PM_(2.5)质量浓度。当前的研究利用了多城市公共领域的PM_(2.5)数据(来自美国领事馆和大使馆的空气监测计划)和MODIS AOD,历时近四年。发现PM_(2.5)与AOD正相关。站式线性回归分析显示了空间变化的回归系数。通过消除气溶胶高发季节的数据重复进行了类似的分析,从而提高了相关系数。通过执行多元回归分析,探索了当地气象条件中日常变化对AOD-PM_(2.5)关系的影响。以三年数据作为训练数据集和一年数据作为验证数据集的多元回归分析交叉验证方法得出的R值为〜0.63。通过讨论可以改善这种关系的因素得出结论。

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