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Solving Inverse Problems for Process-Structure Linkages Using Asynchronous Parallel Bayesian Optimization

机译:使用异步并行贝叶斯优化解决过程结构联系的逆问题

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Process-structure linkage is one of the most important topics in materials science due to the fact that virtually all information related to the materials, including manufacturing processes, lies in the microstructure itself. Therefore, to learn more about the process, one must start by thoroughly examining the microstructure. This gives rise to inverse problems in the context of process-structure linkages, which attempt to identify the processes that were used to manufacturing the given microstructure. In this work, we present an inverse problem for structure-process linkages which we solve using asynchronous parallel Bayesian optimization which exploits parallel computing resources. We demonstrate the effectiveness of the method using kinetic Monte Carlo model for grain growth simulation.
机译:过程 - 结构联系是材料科学中最重要的主题之一,因为几乎所有与材料包括制造过程,包括制造过程,位于微观结构本身。 因此,要了解更多关于过程的信息,必须通过彻底检查微观结构来开始。 这在过程结构联系的背景下产生了逆问题,这试图识别用于制造给定微结构的过程。 在这项工作中,我们对结构过程联动的逆问题呈现使用异步并行贝叶斯优化来解决,该优化利用并行计算资源。 我们证明了使用动力学蒙特卡罗模型进行晶粒生长模拟的方法的有效性。

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