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Estimating Net Primary Production of Swedish Forest Landscapes by Combining Mechanistic Modeling and Remote Sensing

机译:机械建模与遥感相结合的瑞典森林景观净初级生产力估算

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The aim of this study was to investigate a combination of satellite images of leaf area index (LAI) with process-based vegetation modeling for the accurate assessment of the carbon balances of Swedish forest ecosystems at the scale of a landscape. Monthly climatologic data were used as inputs in a dynamic vegetation model, the Lund Potsdam Jena-General Ecosystem Simulator. Model estimates of net primary production (NPP) and the fraction of absorbed photosynthetic active radiation were constrained by combining them with satellite-based LAI images using a general light use efficiency (LUE) model and the Beer-Lambert law. LAI estimates were compared with satellite-extrapolated field estimates of LAI, and the results were generally acceptable. NPP estimates directly from the dynamic vegetation model and estimates obtained by combining the model estimates with remote sensing information were, on average, well simulated but too homogeneous among vegetation types when compared with field estimates using forest inventory data.
机译:这项研究的目的是调查叶面积指数(LAI)的卫星图像与基于过程的植被模型的结合,以便在景观范围内准确评估瑞典森林生态系统的碳平衡。月度气候数据被用作动态植被模型(隆德·波茨坦·耶拿通用生态系统模拟器)的输入。使用一般光利用效率(LUE)模型和比尔-兰伯特定律,将净初级生产力(NPP)和吸收的光合作用活性辐射的比例的模型估计值与基于卫星的LAI图像相结合,从而受到约束。将LAI估计值与LAI的卫星外推估计值进行了比较,结果通常是可以接受的。直接从动态植被模型获得的NPP估算值以及通过将模型估算值与遥感信息相结合而获得的估算值,与使用森林清查数据进行的田间估算相比,在植被类型上平均得到了很好的模拟,但过于均匀。

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