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Modifying Geometric-Optical Bidirectional Reflectance Model for Direct Inversion of Forest Canopy Leaf Area Index

机译:林冠叶面积指数直接反演的改进几何光学双向反射模型

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Forest canopy leaf area index (LAI) inversion based on remote sensing data is an important method to obtain LAI. Currently, the most widely-used model to achieve forest canopy structure parameters is the Li-Strahler geometric-optical bidirectional reflectance model, by considering the effect of crown shape and mutual shadowing, which is referred to as the GOMS model. However, it is difficult to retrieve LAI through the GOMS model directly because LAI is not a fundamental parameter of the model. In this study, a gap probability model was used to obtain the relationship between the canopy structure parameter nR2 and LAI. Thus, LAI was introduced into the GOMS model as an independent variable by replacing nR2 The modified GOMS (MGOMS) model was validated by application to Dayekou in the Heihe River Basin of China. The LAI retrieved using the MGOMS model with optical multi-angle remote sensing data, high spatial resolution images and field-measured data was in good agreement with the field-measured LAI, with an R-square (R2) of 0.64, and an RMSE of 0.67. The results demonstrate that the MGOMS model obtained by replacing the canopy structure parameter nR2 of the GOMS model with LAI can be used to invert LAI directly and precisely.
机译:基于遥感数据的林冠叶面积指数(LAI)反演是获得LAI的重要方法。目前,通过考虑树冠形状和相互遮蔽的影响,用于实现林冠结构参数的最广泛使用的模型是Li-Strahler几何光学双向反射模型,称为GOMS模型。但是,由于LAI不是模型的基本参数,因此很难直接通过GOMS模型检索LAI。本研究采用间隙概率模型获得冠层结构参数nR 2 与LAI之间的关系。因此,通过代替nR 2 将LAI作为自变量引入到GOMS模型中。改进后的GOMS(MGOMS)模型通过在中国黑河流域的大冶口进行了验证。使用MGOMS模型与光学多角度遥感数据,高空间分辨率图像和实地测量数据检索的LAI与实地测量的LAI高度吻合,具有R平方(R 2 )为0.64,RMSE为0.67。结果表明,用LAI代替GOMS模型的冠层结构参数nR 2 得到的MGOMS模型可用于直接,精确地反演LAI。

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