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The influence of numerical error on parameter estimation and uncertainty quantification for advective PDE models

机译:数值误差对平流PDE模型参数估计和不确定量化的影响

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摘要

Advective partial differential equations can be used to describe many scientific processes. Two significant sources of error that can cause difficulties in inferring parameters from experimental data on these processes include (i) noise from the measurement and collection of experimental data and (ii) numerical error in approximating the forward solution to the advection equation. How this second source of error alters parameter estimation and uncertainty quantification during an inverse problem methodology is not well understood. As a step towards a better understanding of this problem, we present both analytical and computational results concerning how a least squares cost function and parameter estimator behave in the presence of numerical error in approximating solutions to the underlying advection equation. We investigate residual patterns to derive an autocorrelative statistical model that can improve parameter estimation and confidence interval computation for first order methods. Building on our results and their general nature, we provide guidelines for practitioners to determine when numerical or experimental error is the main source of error in their inference, along with suggestions of how to efficiently improve their results.
机译:方程式偏微分方程可用于描述许多科学过程。两个重要误差来源可能导致从这些过程的实验数据推断参数的困难包括(i)来自测量和收集实验数据的噪声和(ii)在近似前向方程的前向解决方案近似的数值误差。该第二误差来源是如何改变参数估计和在逆问题方法中的不确定性量化并不充分理解。作为更好地理解这个问题的步骤,我们介绍了关于最小二乘成本函数和参数估计在近似方面的解的数值误差存在下的分析和计算结果。我们调查残余模式来得出自动相关的统计模型,可以提高第一订单方法的参数估计和置信区间计算。在我们的结果及其一般性质上,我们为从业者提供指导者,以确定数值或实验误差是其推论中的主要错误源,以及如何有效地提高结果的建议。

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