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Evaluation and improvement of MODIS aerosol optical depth products over China

机译:中国MODIS气溶胶光学深度产品的评估与改进

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摘要

In this study, we use the level-1.5 and level-2.0 aerosol optical depth (AOD) from the Aerosol Robotic Network (AERONET) Version 3 dataset at 12 sites in China to evaluate the MODIS Collection 6.1 (C6.1) AOD products retrieved using three distinct algorithms: Dark Target (DT), Deep Blue (DB), and DTB merged from DT and DB from Terra and Aqua. The performance of the three algorithms is evaluated. Based on these evaluations, a simple and efficient AOD retrieval algorithm at a high spatial resolution of 1.0 km for China is proposed. AODs at this spatial resolution over China are then retrieved using the methods of DT and DB, respectively. The evaluation results showed that: (1) there is little difference in the AOD products derived from Terra and Aqua. The differences in the determination coefficient (R-2) between the two platforms at most sites are less than 0.05. (2) There are relatively large differences in AODs between the AERONET level-1.5 dataset and MODIS dataset while these differences are mostly filtered out by the quality assurance process of the AERONET level-2.0 dataset. The statistical tests indicate that the MODIS DTB AOD product is generally better than those from the other two algorithms. Using the new algorithm developed in this study, the AODs at a high spatial resolution of 1 km in the whole of China are determined and the results are compared with the MODIS DTB product. The results show that the AODs determined using the new method agree reasonably well with those of the MODIS DTB dataset though the new results have slightly negative biases in the wintertime. However, these negative biases may not be a negative sign due to the fact that the MODIS AODs are subject to a positive bias relative to the AERONET AODs.
机译:在这项研究中,我们使用来自中国12个站点的气溶胶机器人网络(AERONET)版本3数据集的1.5级和2.0级气溶胶光学深度(AOD)来评估检索到的MODIS Collection 6.1(C6.1)AOD产品使用三种不同的算法:Dark Target(DT),Deep Blue(DB)和DTB,分别来自DT和Terra和Aqua的DB。评估了三种算法的性能。基于这些评估,提出了一种简单高效的中国AOD检索算法,其空间分辨率为1.0 km。然后分别使用DT和DB方法检索中国在此空间分辨率下的AOD。评估结果表明:(1)来自Terra和Aqua的AOD产品几乎没有差异。在大多数站点上,两个平台之间的确定系数(R-2)差异小于0.05。 (2)AERONET 1.5级数据集和MODIS数据集之间AOD的差异较大,而这些差异大部分是通过AERONET 2.0级数据集的质量保证过程滤除的。统计测试表明,MODIS DTB AOD产品通常优于其他两种算法的产品。使用这项研究中开发的新算法,确定了整个中国1 km的高空间分辨率的AOD,并将结果与​​MODIS DTB产品进行了比较。结果表明,尽管新结果在冬季略有负偏差,但使用新方法确定的AOD与MODIS DTB数据集的AOD相当吻合。但是,由于MODIS AOD相对于AERONET AOD受到正偏差这一事实,这些负偏差可能不是负号。

著录项

  • 来源
    《Atmospheric environment》 |2020年第2期|117251.1-117251.8|共8页
  • 作者

    Li Yi; Shi Guoping; Sun Zhian;

  • 作者单位

    Nanjing Univ Informat Sci & Technol Sch Geog Sci Nanjing 210044 Peoples R China;

    Australian Bur Meteorol Sci Serv Melbourne Vic Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    China; MODIS; AERONET; AOD;

    机译:中国;蒲式耳航空网;AOD;

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