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Bayesian uncertainty quantification in the evaluation of alloy properties with the cluster expansion method

机译:聚类扩展法评估合金性能的贝叶斯不确定性量化

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摘要

Parametrized surrogate models are used in alloy modeling to quickly obtain otherwise expensive properties such as quantum mechanical energies, and thereafter used to optimize, or simply compute, some alloy quantity of interest, e.g., a phase transition, subject to given constraints. Once learned on a data set, the surrogate can compute alloy properties fast, but with an increased uncertainty compared to the computer code. This uncertainty propagates to the quantity of interest and in this work we seek to quantify it. Furthermore, since the alloy property is expensive to compute, we only have available a limited amount of data from which the surrogate is to be learned. Thus, limited data further increases the uncertainties in the quantity of interest, and we show how to capture this as well. We cannot, and should not, trust the surrogate before we quantify the uncertainties in the application at hand. Therefore, in this work we develop a fully Bayesian framework for quantifying the uncertainties in alloy quantities of interest, originating from replacing the expensive computer code with the fast surrogate, and from limited data. We consider a particular surrogate popular in alloy modeling, the cluster expansion, and aim to quantifyhowwell it captures quantum mechanical energies. Our framework is applicable to other surrogates and alloy properties.
机译:参数化的替代模型用于合金建模,以快速获得其他昂贵的特性,例如量子机械能,然后在给定的约束下,用于优化或简单地计算一些感兴趣的合金量,例如相变。一旦在数据集上获悉,该替代物就可以快速计算合金性能,但与计算机代码相比,不确定性增加。这种不确定性会传播到感兴趣的数量,在这项工作中,我们试图对其进行量化。此外,由于合金性能的计算成本很高,因此我们只能提供有限的数据以从中学习替代物。因此,有限的数据进一步增加了利息数量的不确定性,我们也展示了如何捕捉到这一点。在我们量化手头申请中的不确定性之前,我们不能也不应该信任代理人。因此,在这项工作中,我们开发了一个完整的贝叶斯框架,用于量化目标合金量的不确定性,该框架起源于用快速替代代替昂贵的计算机代码以及有限的数据。我们考虑一种在合金建模,簇扩展中流行的特殊替代物,并旨在量化其捕获量子机械能的程度。我们的框架适用于其他替代物和合金性能。

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