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Optimal spatial sampling scheme for parameter estimation of nonlinear distributed parameter systems

机译:非线性分布参数系统参数估计的最佳空间采样方案

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摘要

In this paper a methodology for the estimation of parameters of distributed parameter systems based on optimal spatial measurements is discussed. The concept of the covariance matrix for sampling design is exploited and D-optimality criteria concerning relevant metrics are linked with the computation of optimal measurement locations. These are obtained at the points where sensitivity functions reach their extrema values and coincide with the locations where system eigenmodes obtained by proper orthogonal decomposition (POD) are maximised or minimised as has been shown in a recent work (Alana & Theodoropoulos, 2011). A tubular reactor with recycle is used as illustrative example to demonstrate the sampling methodology, including cases where the system behaviour is unstable exhibiting sustained oscillations. The estimates with the highest deviation from the nominal parameter values are the ones with the lowest (absolute) sensitivity coefficients. Using a POD-based reduced model can significantly reduce computational costs and in addition improve the estimation procedure by using measurements at the locations where the POD modes extrema occur. The results are strongly influenced by experimental noise, and filtering techniques are needed to mitigate the related uncertainties.
机译:本文讨论了一种基于最佳空间测量值的分布式参数系统参数估计方法。利用了用于抽样设计的协方差矩阵的概念,并将与相关度量有关的D优化准则与最佳测量位置的计算联系在一起。这些是在灵敏度函数达到其极值并与通过适当的正交分解(POD)获得的系统本征模最大化或最小化的位置重合的点上获得的,如最近的工作所示(Alana&Theodoropoulos,2011)。带有循环的管式反应器用作说明性示例,以演示采样方法,包括系统行为不稳定并表现出持续振荡的情况。与标称参数值偏差最大的估计值是具有最低(绝对)灵敏度系数的估计值。使用基于POD的简化模型可以显着降低计算成本,此外,通过在POD模式极值发生的位置使用测量值,可以改善估计过程。结果受到实验噪声的强烈影响,并且需要滤波技术来减轻相关的不确定性。

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