首页> 外文期刊>International journal of applied earth observation and geoinformation >Leaf area index retrieval using gap fractions obtained from high resolution satellite data: Comparisons of approaches, scales and atmospheric effects
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Leaf area index retrieval using gap fractions obtained from high resolution satellite data: Comparisons of approaches, scales and atmospheric effects

机译:使用从高分辨率卫星数据中获得的缺口分数检索叶面积指数:方法,尺度和大气效应的比较

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摘要

This study is aimed at demonstrating the feasibility of the large scale LAI inversion algorithms using red and near infrared reflectance obtained from high resolution satellite imagery. Radiances in digital counts were obtained in 10 m resolution acquired on cloud free day of August 23, 2007, by the SPOT 5 high resolution geometric (HRG) instrument on mostly temperate hardwood forest located in the Great Lakes - St. Lawrence forest in Southern Quebec. Normalized difference vegetation index (NDVI), scaled difference vegetation index (SDVI) and modified soil-adjusted vegetation index (MSAVI) were applied to calculate gap fractions. LAI was inverted from the gap fraction using the common Beer-Lambert's law of light extinction under forest canopy. The robustness of the algorithm was evaluated using the ground-based LAI measurements and by applying the methods for the independently simulated reflectance data using PROSPECT + SAIL coupled radiative transfer models. Furthermore, the high resolution LAI was compared with MODIS LAI product. The effects of atmospheric corrections and scales were investigated for all of the LAI retrieval methods. NDVI was found to be not suitable index for large scale LAI inversion due to the sensitivity to scale and atmospheric effects. SDVI was virtually scale and atmospheric correction invariant. MSAVI was also scale invariant. Considering all sensitivity analysis, MSAVI performed best followed by SDVI for robust LAI inversion from high resolution imagery.
机译:这项研究旨在证明使用从高分辨率卫星图像获得的红色和近红外反射率的大规模LAI反演算法的可行性。数字计数的辐射是通过SPOT 5高分辨率几何(HRG)仪器于2007年8月23日在无云日获得的10 m分辨率获得的,该仪器位于魁北克省南部大湖区-圣劳伦斯森林上的大部分温带硬木森林上。应用归一化差异植被指数(NDVI),比例差异植被指数(SDVI)和改良土壤调整植被指数(MSAVI)来计算间隙分数。使用林冠层下常见的比尔-兰伯特光消光定律,将LAI从缺口分数中反转。使用基于地面的LAI测量并通过使用PROSPECT + SAIL耦合辐射传输模型对独立模拟的反射率数据应用方法来评估算法的鲁棒性。此外,将高分辨率LAI与MODIS LAI产品进行了比较。研究了所有LAI检索方法的大气校正和尺度的影响。由于对规模和大气影响的敏感性,NDVI不适合用于大规模LAI反演。 SDVI实际上是规模和大气校正不变的。 MSAVI也是尺度不变的。考虑到所有灵敏度分析,MSAVI表现最佳,其次是SDVI,可实现高分辨率图像的强大LAI反演。

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