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Height-diameter relationship for Pinus koraiensis in Mengjiagang Forest Farm of Northeast China using nonlinear regressions and artificial neural network models

机译:利用非线性回归和人工神经网络模型对东北蒙嘉港森林农场蒙皮港林农场的高度直径关系

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摘要

Korean pine (Pinus koraiensis Sieb. et Zucc.) is one of the highly commercial woody species in Northeast China. In this study, six nonlinear equations and artificial neural network (ANN) models were employed to model and validate height-diameter (H-DBH) relationship in three different stand densities of one Korean pine plantation. Data were collected in 12 plots in a 43-year-old even-aged stand of P. koraiensis in Mengjiagang Forest Farm, China. The data were randomly split into two datasets for model development (9 plots) and for model validation (3 plots). All candidate models showed a good perfomance in explaining H-DBH relationship with error estimation of tree height ranging from 0.61 to 1.52 m. Especially, ANN models could reduce the root meansquare error (RMSE) by the highest 40%, compared with Power function for the density level of 600 trees. In general, our results showed that ANN models were superior to other six nonlinear models. The H-DBH relationship appeared to differ between standdensity levels, thus it is necessary to establish H-DBH models for specific stand densities to provide more accurate estimation of tree height.
机译:韩国松树(Pinus Koraiensis Sieb。等Zucc。)是中国东北地区高度商业木质物种之一。在该研究中,采用六个非线性方程和人工神经网络(ANN)模型来模拟和验证一个韩国松树种植园的三种不同立体密度的高度直径(H-DBH)关系。在中国蒙家岗森林农场的43岁甚至老年人的P.Koraiensis中收集了12个地块。将数据随机分为两个数据集以进行模型开发(9个绘图)和模型验证(3个绘图)。所有候选模型都显示出良好的性能,用于解释与树高的误差估计范围为0.61至1.52米的误差估计。特别是,ANN模型可以减少根本误差(RMSE)的最高40%,与电力函数相比为600棵树的密度水平。一般来说,我们的结果表明,ANN模型优于其他六种非线性模型。 H-DBH关系似乎在脱光级别之间有所不同,因此必须为特定立体密度建立H-DBH模型,以提供更准确的树高的估计。

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