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Temperature and Emissivity Retrievals From Hyperspectral Thermal Infrared Data Using Linear Spectral Emissivity Constraint

机译:使用线性光谱发射率约束从高光谱热红外数据检索温度和发射率

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摘要

Owing to the ill-posed problem of radiometric equations, the separation of land surface temperature (LST) and land surface emissivity (LSE) from observed data has always been a troublesome problem. On the basis of the assumption that the LSE spectrum can be described by a piecewise linear function, a new method has been proposed to retrieve LST and LSE from atmospherically corrected hyperspectral thermal infrared data using linear spectral emissivity constraint. Comparisons with the existing methods found in literature show that our proposed method is more noise immune than the existing methods. Even with a $hbox{NE}Delta hbox{T}$ of 0.5 K, the rmse of LST is observed to be only 0.16 K, and that of LSE is 0.006. In addition, our proposed method is simple and efficient and does not encounter the problem of singular values unlike the existing methods. As for the impact of the atmosphere, the results show that our proposed method performs well with the uncertainty of the atmospheric downwelling radiance but suffers from the inaccuracy of the atmospheric upwelling radiance and atmospheric transmittance, which implies that an accurate atmospheric correction is still needed to convert the radiance measured at the satellite level to the at-ground radiance. To validate the proposed method, a field experiment was conducted, and the results show that 80% of the samples have an accuracy of LST within 1 K and that the mean values of LSE are accurate to 0.01.
机译:由于辐射方程的不适定问题,从观测数据中分离出地表温度(LST)和地表发射率(LSE)一直是一个麻烦的问题。基于可以用分段线性函数描述LSE光谱的假设,提出了一种新的方法,利用线性光谱发射率约束从大气校正的高光谱热红外数据中检索LST和LSE。与文献中现有方法的比较表明,我们提出的方法比现有方法更具抗噪性。即使$ hbox {NE} Delta hbox {T} $为0.5 K,LST的均方根值也仅为0.16 K,LSE的均方根值为0.006。另外,我们提出的方法简单有效,与现有方法不同,不会遇到奇异值的问题。对于大气的影响,结果表明,本文提出的方法在大气下行辐射的不确定性方面表现良好,但存在大气上行辐射和大气透射率不准确的问题,这意味着仍然需要进行准确的大气校正。将在卫星水平上测得的辐射度转换为地面辐射度。为了验证该方法的有效性,进行了现场实验,结果表明80%的样品的LST精度在1 K以内,LSE的平均值精度为0.01。

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