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Comparative analysis of data merging and fusion algorithms for the prediction of aerosol optical depth

  • University of Central Florida
  • East China Normal University
  • Colorado State University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Data fusion algorithms help extract information from "asynchronous" time series satellite data whereas data merging data help extract information from "synchronous" time series satellite data into a series of synthetic images by using the temporal, spatial, or even spectral properties. Such data fusion algorithms including Bayesian maximum entropy (BME) and spatial and temporal adaptive reflectance fusion model (STARFM) have greatly improved the coverage, enhancing data application potential with higher spatiotemporal resolution via multi-sensor earth observations. The goal of this study is to assess the utility of BME and modified BME algorithm with the aid of a data merging algorithm called Modified Quantile-Quantile Adjustment (MQQA), in comparison with STARFM for the retrieval of Aerosol Optical Depth in an urban environment. MQQA heavily counts on big data to support the systematic bias correction from "synchronous" time series satellite data. Such assessment of algorithmic efficiency needs to be carried out for both top of atmosphere reflectance and ground reflectance levels in support of the deep blue method for the retrieval of atmospheric optical depth at the ground level.

源语言英语
主期刊名Imaging Spectrometry XXIII
主期刊副标题Applications, Sensors, and Processing
编辑Emmett J. Ientilucci
出版商SPIE
ISBN(电子版)9781510629530
DOI
出版状态已出版 - 2019
活动Imaging Spectrometry XXIII: Applications, Sensors, and Processing 2019 - San Diego, 美国
期限: 11 8月 201912 8月 2019

出版系列

姓名Proceedings of SPIE - The International Society for Optical Engineering
11130
ISSN(印刷版)0277-786X
ISSN(电子版)1996-756X

会议

会议Imaging Spectrometry XXIII: Applications, Sensors, and Processing 2019
国家/地区美国
San Diego
时期11/08/1912/08/19

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