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Data-Driven Selection of Tessellation Models Describing Polycrystalline Microstructures

机译:数据驱动的曲面化模型的选择,描述多晶微观结构

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摘要

Tessellation models have proven to be useful for the geometric description of grain microstructures in polycrystalline materials. With the use of a suitable tessellation model, the complex morphology of grains can be represented by a small number of parameters assigned to each grain, which not only entails a significant reduction in complexity, but also facilitates the investigation of certain geometric features of the microstructure. However, for a given set of microstructural data, the choice of a particular geometric model is traditionally based on researcher intuition. The model should provide a sufficiently good approximation to the data, while keeping the number of parameters small. In this paper, we discuss general aspects of the process of model selection and suggest several criteria for selecting an appropriate candidate from a certain set of tessellation models. The choice of candidate represents a trade-off between accuracy and complexity of the model. Here, the selected model is used solely to approximate given data samples, but it also provides guidance for developing stochastic tessellation models and generating virtual microstructures. Model fitting is carried out by simulated annealing, applied in a consistent manner to twelve different tessellation models.
机译:曲面细胞内模型已被证明是对多晶材料中晶粒微观结构的几何描述有用。通过使用合适的曲面层模型,谷物的复杂形态可以通过分配给每个谷物的少量参数来表示,这不仅需要显着降低复杂性,而且有助于调查微观结构的某些几何特征。然而,对于给定的一组微结构数据,特定几何模型的选择传统上基于研究人员直觉。该模型应该为数据提供足够好的近似,同时保持参数的数量小。在本文中,我们讨论了模型选择过程的一般方面,并提出了从一组曲面图模型中选择适当候选的若干标准。候选人的选择代表了模型的准确性和复杂性之间的权衡。这里,所选择的模型仅用于近似于给定的数据样本,但是它还提供了开发随机曲面细分模型和产生虚拟微结构的指导。模型配件是通过模拟退火进行的,以一致的方式施加到十二个不同的曲面细分模型。

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