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Improving estimation of forest aboveground biomass using Landsat 8 imagery by incorporating forest crown density as a dummy variable

机译:通过将森林冠密度掺入虚拟变量来改善森林冠密度的森林地下生物量估计

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摘要

Optical remote sensing data are widely used in estimation of forest aboveground biomass (AGB), and the accuracy of AGE estimations has drawn wide attention. A method to improve the accuracy of remote sensing-based AGB models was developed by combining Landsat 8's Operational Land Imager (OLI) and forest crown density (FCD). Remote sensing-based AGB models with and without an FCD dununy variable were developed using linear regression based on vegetation type (coniferous forest, broadleaf forest, mixed forest, and total vegetation). The differences between the models with and without an FCD dummy variable were analysed and compared. The models involving stratification of vegetation types provided more accurate estimations than the models of total vegetation. The models with an FCD dummy variable performed better than the models without an FCD dummy variable for each vegetation type. In each FCD class, the models with an FCD dummy variable provided more accurate estimations than the models without an FCD dummy variable, and the over- and underestimation problems associated with the models without an FCD dummy variable in thin and dense stands were significantly alleviated by the models with an FCD dummy variable. Therefore, introducing FCD into remote sensing-based AGB models has great potential to improve AGB estimation.
机译:光学遥感数据广泛应用于森林地上生物量(AGB)的估算,年龄估算的准确性已引起广泛关注。将陆地卫星8号的可操作陆地成像仪(OLI)和森林冠层密度(FCD)相结合,开发了一种提高基于遥感的AGB模型精度的方法。使用基于植被类型(针叶林、阔叶林、混交林和总植被)的线性回归,开发了基于遥感的AGB模型,包括FCD dununy变量和不包括FCD dununy变量。分析和比较了使用和不使用FCD虚拟变量的模型之间的差异。涉及植被类型分层的模型提供了比总植被模型更准确的估计。对于每种植被类型,具有FCD虚拟变量的模型比没有FCD虚拟变量的模型表现更好。在每个FCD类别中,带有FCD虚拟变量的模型比没有FCD虚拟变量的模型提供了更准确的估计,带有FCD虚拟变量的模型显著缓解了与薄林分和稠密林分中没有FCD虚拟变量的模型相关的高估和低估问题。因此,在基于遥感的AGB模型中引入FCD对改进AGB估计有很大的潜力。

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