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Effect of the understory on the estimation of coniferous forest leaf area index (LAI) based on remotely sensed data

机译:林下对基于遥感数据的针叶林叶面积指数(LAI)估计的影响

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Abstract: The SAIL model, a canopy reflectance model, was used to simulate narrow-band reflectance of overstory/background compositions to study the effect of the background on the estimation of the coniferous forest LAI based on remotely sensed data. We have simulated several mixed targets with a pine tree canopy and different backgrounds, including understory vegetation, soil and litter. For each type of mixed target we have modelled the reflectance for several LAI. The modeled data were used to evaluate the performance of the broad and narrow band NDVI for predicting the LAI. Results show that, for low LAI, the type of background contributes strongly to the reflectance of the mixed targets. Furthermore, the way the understory affects the mixed signal depends significantly on the vegetation species. The sensitivity of the NDVI for estimating the pine canopy LAI depends on the type of background and it was verified that mixed targets with non-vegetation backgrounds have larger sensitivity than the ones with vegetative backgrounds. The results show that the NDVI, calculated with broad or narrow bands, is not adequate to predict the LAI of open pine stands, when one does not known the type of background that is underneath the pine canopy. !34
机译:摘要:SAIL模型是一种冠层反射率模型,用于模拟地上/背景成分的窄带反射率,以研究背景对基于遥感数据的针叶林LAI估计的影响。我们用松树树冠和不同背景模拟了几种混合目标,包括林下植被,土壤和垃圾。对于每种类型的混合目标,我们都对几个LAI的反射率进行了建模。建模数据用于评估宽带和窄带NDVI预测LAI的性能。结果表明,对于低LAI,背景类型对混合目标的反射率有很大贡献。此外,林下层影响混合信号的方式在很大程度上取决于植被种类。 NDVI估计松树冠层LAI的敏感性取决于背景类型,并且已验证具有非植被背景的混合目标具有比具有植物背景的目标更大的敏感性。结果表明,当人们不知道松树冠层下面的背景类型时,用宽带或窄带计算的NDVI不足以预测松树阔叶林的LAI。 !34

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