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Simultaneous Model Calibration and Source Inversion in Atmospheric Dispersion Models

机译:大气分散模型同时模型校准和源反转

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摘要

We present a cost-effective method for model calibration and solution of source inversion problems in atmospheric dispersion modelling. We use Gaussian process emulations of atmospheric dispersion models within a Bayesian framework for solution of inverse problems. The model and source parameters are treated as unknowns and we obtain point estimates and approximation of uncertainties for sources while simultaneously calibrating the forward model. The method is validated in the context of an industrial case study involving emissions from a smelting operation for which cumulative monthly measurements of zinc particulate depositions are available.
机译:我们提出了一种经济有效的方法,用于大气扩散模拟中的模型校准和源反演问题的解决。我们在贝叶斯框架内使用大气扩散模型的高斯过程模拟来解决反问题。模型和震源参数被视为未知数,我们在校准正演模型的同时获得震源的点估计和不确定性近似值。该方法在涉及冶炼操作排放物的工业案例研究中得到验证,其中锌颗粒沉积的累积月度测量可用。

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