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The Further Development of Stem Taper and Volume Models Defined by Stochastic Differential Equations

机译:随机微分方程定义的茎锥度和体积模型的进一步发展

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Stem taper process measured repeatedly among a series of individual trees is standardly analyzed by fixed and mixed regression models. This stem taper process can be adequately modeled by parametric stochastic differential equations (SDEs). We focus on the segmented stem taper model defined by the Gompertz, geometric Brownian motion and Ornstein-Uhlenbeck stochastic processes. This class of models enables the representation of randomness in the taper dynamics. The parameter estimators are evaluated by maximum likelihood procedure. The SDEs stem taper models were fitted to a data set of Scots pine trees collected across the entire Lithuanian territory. Comparison of the predicted stem taper and stem volume with those obtained using regression based models showed a predictive power to the SDEs models.
机译:通过固定和混合回归模型标准分析一系列单独的树中重复测量的茎锥形工艺。该杆锥形过程可以通过参数随机微分方程(SDE)进行充分建模。我们专注于由Gompertz,几何布朗运动和Ornstein-Uhlenbeck随机过程定义的分段茎锥模型。这类模型可以在锥度动态中表示随机性。参数估计器通过最大似然程序进行评估。 SDES STEP锥形模型安装在整个立陶宛地区收集的苏格兰松树的数据集。预测的茎锥度和茎体与使用回归基础的模型获得的比较显示了SDES模型的预测电力。

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