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Derivation of forest leaf area index from multi- and hyperspectral remote sensing data

机译:从多光谱和高光谱遥感数据推导森林叶面积指数

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This study evaluated systematically linear predictive models between vegetation indices (VIs) derived from radiometrically corrected airborne imaging spectrometer (HyMap) data and field measurements of leaf area index (LAI) (n=40). Ratio-based and soil-line related broadband VIs were calculated after HyMap reflectance had been spectrally resampled to Landsat TM channels. Hyperspectral VIs involved all possible types of 2-band combinations of RVI and PVI. Cross-validation procedure was used to assess the prediction power of the regression models. Analyses were performed on the entire data set or on subsets stratified according to stand age. A perpendicular vegetation index (PVI) based on wavebands at 1088 run and 1148 nm was linearly related to leaf area index (LAI) (R2=0.67, RMSE=0.69m2m-2 (21% of the mean); after removal of one forest stand subjected to clearing measures: R2=0.77, RMSE=0.54m2m-2 (17% of the mean)). The study demonstrates that for hyperspectral image data, linear regression models can be applied to quantify LAI with good accuracy. Best hyperspectral VIs in relation with LAI are typically based on wavebands related to prominent water absorption features. Such VIs measure the total amount of canopy water; as the leaf water content is considered to be relatively constant in the study area, variations of LAI are retrieved.
机译:这项研究评估了从辐射校正的机载成像光谱仪(HyMap)数据得出的植被指数(VI)与叶面积指数(LAI)的田间测量(n = 40)之间的系统线性预测模型。在将HyMap反射率光谱重新采样到Landsat TM通道后,计算基于比率和土壤线的宽带VI。高光谱VI涉及RVI和PVI的所有可能的2波段组合类型。交叉验证程序用于评估回归模型的预测能力。对整个数据集或根据林分年龄分层的子集进行了分析。在去除一片森林之后,基于1088游程和1148 nm波段的垂直植被指数(PVI)与叶面积指数(LAI)线性相关(R2 = 0.67,RMSE = 0.69m2m-2(平均值的21%)接受清理措施的林分:R2 = 0.77,RMSE = 0.54m2m-2(平均值的17%)。研究表明,对于高光谱图像数据,线性回归模型可用于以良好的准确性量化LAI。与LAI相关的最佳高光谱VI通常基于与突出的吸水特征有关的波段。此类VI可测量冠层水的总量;由于研究区域的叶片含水量相对恒定,因此可以获取LAI的变化。

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