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Including prior information in the estimation of effective soil parameters in unsaturated zone modelling

机译:在非饱和带建模中,在评估有效土壤参数中包括先验信息

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In this paper we propose a methodology to include prior information in the estimation of effective soil parameters for modelling the soil moisture content in the unsaturated zone. Laboratory measurements on undisturbed soil cores were used to estimate the moisture retention curve and hydraulic conductivity curve parameters. The soil moisture content was measured at 25 locations along three transects and-at three different depths (surface, 30 and 60 cm) on an 80 X 20 m hillslope for the year 2001. Soil cores were collected in 84 locations situated in three profile pits along the hillslope. For the estimation of the effective soil hydraulic parameters the joint probability distribution of measured parameter values was used as prior information. A two-horizon single column ID MIKE SHE model based on Richards' equation was set-up for nine soil moisture measurement locations along the middle transect of the hillslope. The goal of the model is to simulate the soil moisture profile at each location. The shuffled complex evolution (SCE) algorithm has been-applied to estimate effective model parameters using either wide parameter ranges, referred to as the 'no-prior' case, or the joint probability distribution of measured parameter values as prior information ('prior' case). When the prior information is incorporated in the SCE optimisation the goodness-of-fit of the model predictions is only slightly worse compared to when no-prior information is incorporated. However, the effective parameter estimates are more realistic when the prior information is incorporated. for both the no-prior and prior case the generalised likelihood uncertainty estimation procedure (GLUE) was subsequently used to estimate the uncertainty bounds (UB) on the model predictions. When incorporating the prior information more parameter sets were accepted for the estimation of the predictive uncertainty and the parameter values were more realistic. Moreover, UB, better enclosed the observations. Thus, incorporating prior information in GLUE reduces the amount of model evaluations needed to obtain sufficient behavioural parameter sets'. The results indicate the importance of prior information in the SCE and GLUE parameter estimation strategies. (C) 2004 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种方法,该方法将先验信息包括在有效土壤参数的估算中,以模拟非饱和区的土壤水分含量。使用实验室在未扰动的土壤核心上的测量值来估算保水率曲线和水力传导率曲线参数。在2001年的80 X 20 m山坡上,在三个样带的25个位置和三个不同深度(表面30和60 cm)上测量了土壤水分。在三个剖面坑中的84个位置收集了土壤核心沿着山坡。为了估算有效的土壤水力参数,将测得的参数值的联合概率分布用作先验信息。建立了基于理查兹方程的两水平单列ID MIKE SHE模型,用于沿山坡中段的九个土壤湿度测量位置。该模型的目标是模拟每个位置的土壤水分剖面。改组的复杂进化(SCE)算法已应用到使用较宽的参数范围(称为“无先验”情况)或将测得的参数值的联合概率分布作为先验信息(“先验”)来估计有效模型参数的情况。案件)。当先验信息被合并到SCE优化中时,与未先验信息被合并时相比,模型预测的拟合优度仅稍差一些。但是,当合并先验信息时,有效参数估计更为现实。对于无先例情况和先前情况,随后使用广义似然不确定性估计程序(GLUE)来估计模型预测的不确定性边界(UB)。当合并先验信息时,可以接受更多参数集来估计预测不确定性,并且参数值更加实际。此外,UB最好附上观察结果。因此,将先验信息合并到GLUE中可减少获得足够的行为参数集所需的模型评估量。结果表明先验信息在SCE和GLUE参数估计策略中的重要性。 (C)2004 Elsevier B.V.保留所有权利。

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