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A practical split-window algorithm for retrieving land-surface temperature from MODIS data

机译:从MODIS数据中检索地表温度的实用分割窗口算法

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摘要

This paper presents a practical split-window algorithm utilized to retrieve land-surface temperature (LST) from Moderate-resolution Imaging Spectroradiometer (MODIS) data, which involves two essential parameters (transmittance and emissivity), and a new method to simplify Planck function has been proposed. The method for linearization of Planck function, how to obtain atmosphere transmittance from MODIS near-infrared (NIR) bands and the method for estimating of emissivity of ground are discussed with details. Sensitivity analysis of the algorithm has been performed for the evaluation of probable LST estimation error due to the possible errors in water content and emissivity. Analysis indicates that the algorithm is not sensitive to these two parameters. Especially, the average LST error is changed between 0.19-l.l℃ when the water content error in the simulation standard atmosphere changes between -80 and 130%. We confirm the conclusion by retrieving LST from MODIS image data through changing retrieval water content error. Two methods have been used to validate the proposed algorithm. Results from validation and comparison using the standard atmospheric simulation and the comparison with the MODIS LST product demonstrate the applicability of the algorithm. Validation with standard atmospheric simulation indicates that this algorithm can achieve the average accuracy of this algorithm is about 0.32℃ in LST retrieval for the case without error in both transmittance and emissivity estimations. The accuracy of this algorithm is about 0.37℃ and 0.49℃ respectively when the transmittance is computed from the simulation water content by exponent fit and linear fit respectively.
机译:本文提出了一种实用的分割窗口算法,该算法用于从中等分辨率成像光谱仪(MODIS)数据中检索地表温度(LST),该数据涉及两个基本参数(透射率和发射率),并且一种简化Planck函数的新方法具有被提出。详细讨论了普朗克函数的线性化方法,如何从MODIS近红外(NIR)波段获得大气透射率以及估计地面发射率的方法。由于水含量和发射率可能存在误差,因此对该算法进行了灵敏度分析,以评估可能的LST估计误差。分析表明该算法对这两个参数不敏感。特别是,当模拟标准大气中的水含量误差在-80%至130%之间变化时,平均LST误差在0.19-1.l℃之间变化。我们通过更改检索水含量误差从MODIS图像数据中检索LST来确认结论。已经使用两种方法来验证所提出的算法。使用标准大气模拟进行的验证和比较以及与MODIS LST产品的比较结果证明了该算法的适用性。通过标准大气模拟的验证表明,在透射率和发射率估计均无误差的情况下,该算法在LST检索中可以达到平均算法精度约0.32℃。当分别通过指数拟合和线性拟合从模拟水含量计算出透光率时,该算法的准确度分别约为0.37℃和0.49℃。

著录项

  • 来源
    《International journal of remote sensing》 |2005年第15期|p.3181-3204|共24页
  • 作者

    K. MAO; Z. QIN; J. SHI; P. GONG;

  • 作者单位

    The Key Laboratory of Remote Sensing Science, Institute of Remote Sensing Applications, Chinese Academy of Science, Beijing Normal University, Beijing 100101, China;

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

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