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Algorithm Development for Land Surface Temperature Retrieval: Application to Chinese Gaofen-5 Data

机译:地表温度反演算法开发:在中国高分五号资料中的应用

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摘要

Land surface temperature (LST) is a key variable in the study of the energy exchange between the land surface and the atmosphere. Among the different methods proposed to estimate LST, the quadratic split-window (SW) method has achieved considerable popularity. This method works well when the emissivities are high in both channels. Unfortunately, it performs poorly for low land surface emissivities (LSEs). To solve this problem, assuming that the LSE is known, the constant in the quadratic SW method was calculated by maintaining the other coefficients the same as those obtained for the black body condition. This procedure permits transfer of the emissivity effect to the constant. The result demonstrated that the constant was influenced by both atmospheric water vapour content (W) and atmospheric temperature (T 0 ) in the bottom layer. To parameterize the constant, an exponential approximation between W and T 0 was used. A LST retrieval algorithm was proposed. The error for the proposed algorithm was RMSE = 0.70 K. Sensitivity analysis results showed that under the consideration of NEΔT = 0.2 K, 20% uncertainty in W and 1% uncertainties in the channel mean emissivity and the channel emissivity difference, the RMSE was 1.29 K. Compared with AST 08 product, the proposed algorithm underestimated LST by about 0.8 K for both study areas when ASTER L1B data was used as a proxy of Gaofen-5 (GF-5) satellite data. The GF-5 satellite is scheduled to be launched in 2017.
机译:地表温度(LST)是研究地表与大气之间能量交换的关键变量。在提议的估计LST的不同方法中,二次分割窗口(SW)方法已获得相当大的普及。当两个通道的发射率都很高时,此方法效果很好。不幸的是,它在低地面发射率(LSE)方面表现不佳。为了解决该问题,假设已知LSE,则通过将其他系数保持与黑体条件下获得的系数相同,来计算二次SW方法中的常数。该过程允许将发射率效应转换为常数。结果表明该常数受底层中大气水蒸气含量(W)和大气温度(T 0)的影响。为了参数化常数,使用了W和T 0之间的指数近似。提出了一种LST检索算法。该算法的误差为RMSE = 0.70K。灵敏度分析结果表明,在NEΔT= 0.2 K的条件下,W的不确定度为20%,通道平均发射率和通道发射率差的不确定度为1%,RMSE为1.29 K.与AST 08产品相比,当将ASTER L1B数据用作高分5(GF-5)卫星数据的代理时,两个研究区域的拟议算法都将LST低估了约0.8K。 GF-5卫星计划于2017年发射。

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