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Data fitting and image fine-tuning approach to solve the inverse problem in fluorescence molecular imaging

机译:数据拟合和图像微调方法解决荧光分子成像中的逆问题

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One of the most challenging problems in medical imaging is to "see" a tumour embedded into tissue, which is a turbid medium, by using fluorescent probes for tumour labeling. This problem, despite the efforts made during the last years, has not been fully encountered yet, due to the non-linear nature of the inverse problem and the convergence failures of many optimization techniques. This paper describes a robust solution of the inverse problem, based on data fitting and image fine-tuning techniques. As a forward solver the coupled radiative transfer equation and diffusion approximation model is proposed and compromised via a finite element method, enhanced with adaptive multi-grids for faster and more accurate convergence. A database is constructed by application of the forward model on virtual tumours with known geometry, and thus fluorophore distribution, embedded into simulated tissues. The fitting procedure produces the best matching between the real and virtual data, and thus provides the initial estimation of the fluorophore distribution. Using this information, the coupled radiative transfer equation and diffusion approximation model has the required initial values for a computational reasonable and successful convergence during the image fine-tuning application.
机译:医学成像中最具挑战性的问题之一是通过使用荧光探针对肿瘤标记的荧光探针“参见嵌入组织中的肿瘤,这是一种肿瘤介质。这一问题尽管在过去几年中的努力,但由于逆问题的非线性性质和许多优化技术的收敛失败,尚未完全遇到。本文基于数据拟合和图像微调技术描述了逆问题的强大解决方案。作为前向求解器,通过有限元方法提出和泄漏耦合辐射传输方程和扩散近似模型,增强了自适应多网格,以便更快,更准确的收敛。通过在具有已知几何形状的虚拟肿瘤上应用前向模型构建数据库,从而构建具有已知几何形状的荧光团分布,嵌入模拟组织中。拟合程序在真实和虚拟数据之间产生最佳匹配,从而提供荧光团分布的初始估计。使用该信息,耦合的辐射传送方程和扩散近似模型具有在图像微调应用期间计算合理和成功的收敛的所需初始值。

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