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首页> 外文期刊>Journal of Mathematical Biology >An image-driven parameter estimation problem for a reaction-diffusion glioma growth model with mass effects
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An image-driven parameter estimation problem for a reaction-diffusion glioma growth model with mass effects

机译:具有质量效应的反应扩散神经胶质瘤生长模型的图像驱动参数估计问题

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We present a framework for modeling gliomas growth and their mechanical impact on the surrounding brain tissue (the so-called, mass-effect). We employ an Eulerian continuum approach that results in a strongly coupled system of nonlinear Partial Differential Equations (PDEs): a reaction-diffusion model for the tumor growth and a piecewise linearly elastic material for the background tissue. To estimate unknown model parameters and enable patient-specific simulations we formulate and solve a PDE-constrained optimization problem. Our two main goals are the following: (1) to improve the deformable registration from images of brain tumor patients to a common stereotactic space, thereby assisting in the construction of statistical anatomical atlases; and (2) to develop predictive capabilities for glioma growth, after the model parameters are estimated for a given patient. To our knowledge, this is the first attempt in the literature to introduce an adjoint-based, PDE-constrained optimization formulation in the context of image-driven modeling spatio-temporal tumor evolution. In this paper, we present the formulation, and the solution method and we conduct 1D numerical experiments for preliminary evaluation of the overall formulation/methodology.
机译:我们提供了一个用于建模神经胶质瘤生长及其对周围脑组织的机械影响(所谓的质量效应)的框架。我们采用欧拉连续谱方法,该方法导致了非线性偏微分方程(PDE)的强耦合系统:肿瘤扩散的反应扩散模型和背景组织的分段线性弹性材料。为了估计未知的模型参数并启用针对特定患者的模拟,我们制定并解决了PDE约束的优化问题。我们的两个主要目标如下:(1)改善从脑肿瘤患者的图像到共同的立体定向空间的可变形配准,从而帮助构建统计解剖图谱; (2)在估算给定患者的模型参数后,发展对神经胶质瘤生长的预测能力。据我们所知,这是文献中首次尝试在图像驱动的模型时空肿瘤演化的背景下引入基于伴随的,PDE约束的优化公式。在本文中,我们介绍了配方和解决方法,并进行了一维数值实验以初步评估整体配方/方法。

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