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Comparison of diurnal temperature cycle model and polynomial regression technique in temporal normalization of airborne land surface temperature

机译:昼间温度循环模型和多项式回归技术在机载陆地表面温度时间归一化中的比较

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Airborne TIR remote sensing can obtain land surface temperature (LST) with high spatial resolution. However, the swath width of airborne stripes is usually limited. Therefore, it is necessary to generate the LSTs for a large area through temporal normalization of LSTs derived from different stripes. By selecting an agricultural oasis as the study area, this study compares the diurnal temperature cycle (DTC) model and polynomial regression (PR) technique in the temporal normalization of the LSTs derived from the Thermal Airborne Spectrographic Imager (TASI) data. The results show that the DTC model has better accuracy in normalizing the LSTs. However, the PR technique is simple and requires less ancillary data. The DTC method can normalize the LST to any specific time and generate temporally continuous LSTs, while the PR method can only do relative normalization. This study is helpful to reduce the temperature differences of different airborne stripes and obtain airborne LSTs with both high spatial and temporal resolutions.
机译:机载TIR遥感可以获取具有高空间分辨率的地表温度(LST)。但是,机载条纹的条幅宽度通常是有限的。因此,有必要通过对源自不同条带的LST进行时间标准化来生成大面积的LST。通过选择农业绿洲作为研究区域,本研究在从热机载光谱成像仪(TASI)数据得出的LST的时间归一化中比较了昼夜温度周期(DTC)模型和多项式回归(PR)技术。结果表明,DTC模型在归一化LST方面具有更好的准确性。但是,PR技术很简单,并且需要较少的辅助数据。 DTC方法可以将LST归一化为任何特定时间,并生成时间上连续的LST,而PR方法只能进行相对归一化。这项研究有助于减少不同机载条纹的温度差异,并获得具有高时空分辨率的机载LST。

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