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Inversion of a forest reflectance model to estimate structural canopy variables from hyperspectral remote sensing data

机译:反演森林反射率模型以根据高光谱遥感数据估算结构冠层变量

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The potential of canopy reflectance modelling to retrieve simultaneously several structural variables in managed Norway spruce stands was investigated using the "Invertible Forest Reflectance Model", INFORM. INFORM is an innovative extension of the FLIM model, with crown transparency, infinite crown reflectance and understory reflectance simulated using physically based sub-models (SAILH, LIBERTY and PROSPECT). The INFORM model was inverted with hyperspectral airborne HyMap data using a neural network approach. INFORM based estimates of forest structural variables were produced using site-specific ranges of stand structural variables. A relatively simple three layer feed-forward backpropagation neural network with two input neurons, one neuron in the hidden layer and three output neurons was employed to map leaf area index (LAI), crown coverage and stem density.
机译:使用INFORM的“可逆森林反射模型”研究了冠层反射模型同时检索挪威云杉林分林中几个结构变量的潜力。 INFORM是FLIM模型的创新扩展,它使用基于物理的子模型(SAILH,LIBERTY和PROSPECT)模拟了冠的透明度,无限的冠反射率和下层反射率。使用神经网络方法将INFORM模型与高光谱机载HyMap数据进行反演。利用基于特定地点的林分结构变量范围,得出基于INFORM的森林结构变量估计值。使用一个相对简单的三层前馈反向传播神经网络,该网络具有两个输入神经元,一个隐藏层中的神经元和三个输出神经元,以绘制叶面积指数(LAI),树冠覆盖度和茎密度。

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