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Methods and evaluations of MRI content-adaptive finite element mesh generation for bioelectromagnetic problems

机译:针对生物电磁问题的MRI内容自适应有限元网格生成方法和评估

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摘要

In studying bioelectromagnetic problems, finite element analysis (FEA) offers several advantages over conventional methods such as the boundary element method. It allows truly volumetric analysis and incorporation of material properties such as anisotropic conductivity. For FEA, mesh generation is the first critical requirement and there exist many different approaches. However, conventional approaches offered by commercial packages and various algorithms do not generate content-adaptive meshes (cMeshes), resulting in numerous nodes and elements in modelling the conducting domain, and thereby increasing computational load and demand. In this work, we present efficient content-adaptive mesh generation schemes for complex biological volumes of MR images. The presented methodology is fully automatic and generates FE meshes that are adaptive to the geometrical contents of MR images, allowing optimal representation of conducting domain for FEA. We have also evaluated the effect of cMeshes on FEA in three dimensions by comparing the forward solutions from various cMesh head models to the solutions from the reference FE head model in which fine and equidistant FEs constitute the model. The results show that there is a significant gain in computation time with minor loss in numerical accuracy. We believe that cMeshes should be useful in the FEA of bioelectromagnetic problems.
机译:在研究生物电磁问题时,有限元分析(FEA)与常规方法(例如边界元方法)相比具有许多优势。它可以进行真正的体积分析,并纳入诸如各向异性电导率的材料特性。对于FEA,网格生成是第一个关键要求,并且存在许多不同的方法。但是,由商业包装和各种算法提供的常规方法不能生成内容自适应网格(cMeshes),导致在对导电域进行建模时会出现大量节点和元素,从而增加了计算量和需求。在这项工作中,我们提出了针对内容复杂的MR图像的有效的内容自适应网格生成方案。所提出的方法是完全自动化的,并生成与MR图像的几何内容相适应的FE网格,从而实现FEA导电区域的最佳表示。我们还通过比较各种cMesh头部模型的正向解与参考FE头部模型(由精细和等距FE构成模型)的解进行比较,从三个维度评估了cMeshes对FEA的影响。结果表明,计算时间显着增加,数值精度损失较小。我们相信,cMeshes在生物电磁问题的有限元分析中应该是有用的。

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