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Scalable shape optimization methods for structured inverse modeling in 3D diffusive processes

机译:用于3D扩散过程的结构化逆建模的可扩展形状优化方法

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In this work we consider inverse modeling of the shape of cells in the outermost layer of human skin. We propose a novel algorithm that combines mathematical shape optimization with high-performance computing. Our aim is to fit a parabolic model for drug diffusion through the skin to data measurements. The degree of freedom is not the permeability itself, but the shape that distinguishes regions of high and low diffusivity. These are the cells and the space in between. The key part of the method is the computation of shape gradients, which are then applied as deformations to the finite element mesh, in order to minimize a tracking type objective function. Fine structures in the skin require a very high resolution in the computational model. We therefor investigate the scalability of our algorithm up to millions of discretization elements.
机译:在这项工作中,我们考虑对人体皮肤最外层的细胞形状进行逆建模。我们提出了一种将数学形状优化与高性能计算相结合的新颖算法。我们的目标是将抛物线模型拟合为药物通过皮肤扩散的模型,以进行数据测量。自由度不是渗透率本身,而是区分高和低扩散率区域的形状。这些是单元格和它们之间的空间。该方法的关键部分是形状梯度的计算,然后将其作为变形应用于有限元网格,以最小化跟踪类型的目标函数。皮肤中的精细结构在计算模型中需要非常高的分辨率。因此,我们研究了我们算法的可扩展性,可扩展到数百万个离散化元素。

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