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A robust framework for soft tissue simulations with application to modeling brain tumor mass effect in 3D MR images

机译:用于软组织仿真的强大框架,可用于在3D MR图像中建模脑肿瘤块效应

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摘要

We present a framework for black-box and flexible simulation of soft tissue deformation for medical imaging and surgical planning applications. Our main motivation in the present work is to develop robust algorithms that allow batch processing for registration of brains with tumors to statistical atlases of normal brains and construction of brain tumor atlases. We describe a fully Eulerian formulation able to handle large deformations effortlessly, with a level-set-based approach for evolving fronts. We use a regular grid—fictitious domain method approach, in which we approximate coefficient discontinuities, distributed forces and boundary conditions. This approach circumvents the need for unstructured mesh generation, which is often a bottleneck in the modeling and simulation pipeline. Our framework employs penalty approaches to impose boundary conditions and uses a matrix-free implementation coupled with a multigrid-accelerated Krylov solver. The overall scheme results in a scalable method with minimal storage requirements and optimal algorithmic complexity. We illustrate the potential of our framework to simulate realistic brain tumor mass effects at reduced computational cost, for aiding the registration process towards the construction of brain tumor atlases.
机译:我们提出了一种用于医学成像和手术计划应用的软组织变形的黑匣子和灵活模拟的框架。我们当前工作的主要动机是开发鲁棒的算法,该算法允许批处理将具有肿瘤的大脑注册到正常大脑的统计图集并构建脑肿瘤图集。我们描述了一种完全欧拉公式,该公式能够轻松处理大变形,并采用基于水平集的方法来演化前沿。我们使用常规的网格-虚拟域方法,在该方法中,我们近似系数不连续性,分布力和边界条件。这种方法避免了对非结构化网格生成的需求,这通常是建模和仿真流程中的瓶颈。我们的框架采用惩罚方法施加边界条件,并使用无矩阵实现和多网格加速Krylov求解器。总体方案导致具有最小的存储需求和最佳算法复杂度的可扩展方法。我们说明了我们的框架以降低的计算成本模拟现实的脑肿瘤块效应的潜力,以帮助注册过程朝着脑肿瘤图谱的构建发展。

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