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Effect of emissivity uncertainty on surface temperature retrieval over urban areas: Investigations based on spectral libraries

机译:发射率不确定性对城市地区地表温度反演的影响:基于谱库的调查

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摘要

Land surface emissivity (LSE) is a prerequisite for retrieving land surface temperature (LST) through single channel methods. According to error model, a 0.01 (1%) uncertainty of LSE may result in a 0.5 K error in LST under a moderate condition, while an obvious error (approximately 1 K) is possible under a warmer and less humid situation. Significant emissivity variations are presented among the anthropogenic materials in three spectral libraries, which raise a critical question that whether urban LSE can be estimated accurately to meet the needs for LST retrieval. Methods widely used for urban LSE estimation are investigated, including the classification-based method, the spectral-index based method, and the linear spectral mixture model (LSMM). Results indicate that the classification-based method may not be effectively applicable for urban LSE estimation, due mainly to the insignificant relation between the short-wave multispectral reflectance and the long-wave thermal emissivity shown by the spectra. Compared with the classification-based method, the LSMM shows relatively more accurate predictions, whereas, the performance of the LSMM largely depends on the determination of endmembers. Obvious uncertainties in LSE estimation likely appear if endmembers are determined improperly. Increasing the spectra for endmembers is a practical and beneficial means for LSMM when there is not a priori knowledge, which emphasizes the necessity of building a comprehensive spectral library of urban materials. Furthermore, the LST retrieval from a single channel of Landsat 8 is more challenging as compared with the retrieval from the channels of its predecessors-Landsat 4/5/7. (C) 2016 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
机译:地表发射率(LSE)是通过单通道方法检索地表温度(LST)的先决条件。根据误差模型,在中等条件下,LSE的不确定性为0.01(1%)可能会导致LST出现0.5 K的误差,而在温暖和少湿的情况下,可能会出现明显的误差(大约1 K)。在三个光谱库中的人为材料之间存在显着的发射率变化,这提出了一个关键问题,即是否可以准确估算城市LSE以满足LST检索的需求。研究了广泛用于城市LSE估计的方法,包括基于分类的方法,基于光谱指数的方法和线性光谱混合模型(LSMM)。结果表明,基于分类的方法可能不适用于城市LSE估计,这主要是由于光谱显示的短波多光谱反射率与长波热发射率之间的关系不明显。与基于分类的方法相比,LSMM显示出相对更准确的预测,而LSMM的性能很大程度上取决于端成员的确定。如果最终成员的确定不正确,则LSE估计中可能会出现明显的不确定性。在没有先验知识的情况下,增加最终成员的光谱是LSMM的一种实用且有益的手段,这强调了建立城市材料综合光谱库的必要性。此外,与从其前身Landsat 4/5/7的通道进行检索相比,从Landsat 8的单个通道进行LST检索更具挑战性。 (C)2016国际摄影测量与遥感学会(ISPRS)。由Elsevier B.V.发布。保留所有权利。

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    Sun Yat Sen Univ, Sch Atmospher Sci, Guangzhou 510275, Guangdong, Peoples R China|Sun Yat Sen Univ, Inst Earth Climate & Environm Syst, Guangzhou 510275, Guangdong, Peoples R China;

    Sun Yat Sen Univ, Sch Atmospher Sci, Guangzhou 510275, Guangdong, Peoples R China|Sun Yat Sen Univ, Inst Earth Climate & Environm Syst, Guangzhou 510275, Guangdong, Peoples R China;

    Univ Twente, Fac Geoinformat Sci & Earth Observat ITC, POB 217, NL-7500 AE Enschede, Netherlands;

    Univ Hong Kong, Dept Mech Engn, Hong Kong, Hong Kong, Peoples R China;

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  • 正文语种 eng
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  • 关键词

    Thermal imagery; Land surface temperature; Landsat; HJ1B; Spectral library;

    机译:热成像地表温度Landsat HJ1B光谱库;

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