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Fluorescence Diffuse Optical Tomography: a Wavelet-based Model Reduction

机译:荧光漫射光学断层扫描:基于小波的模型减少

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Fluorescence diffuse optical tomography is becoming a powerful tool for the investigation of molecular events in small animal studies for new therapeutics developments. Here, the stress is put on the mathematical problem of the tomography, that can be formulated in terms of an estimation of physical parameters appearing as a set of Partial Differential Equations (PDEs). The Finite Element Method has been chosen here to resolve the diffusion equation because it has no restriction considering the geometry or the homogeneity of the system. It is nonetheless well-known to be time and memory consuming, mainly because of the large dimensions of the involved matrices. Our principal objective is to reduce the model in order to speed up the model computation. For that, a new method based on a multiresolution technique is chosen. All the matrices appearing in the discretized version of the PDEs are projected onto an orthonormal wavelet basis, and reduced according to the multiresolution method. With the first order resolution, this compression leads to the reduction of a factor 2×2 of the initial dimension, the inversion of the matrices is approximately 4 times faster. A validation study on a phantom was conducted to evaluate the feasibility of this reduction method.
机译:荧光漫射光学断层扫描正在成为对新治疗发展的小型动物研究中的分子事件进行调查的强大工具。这里,应力介绍断层扫描的数学问题,可以根据出现作为一组部分微分方程(PDE)的物理参数的估计来配制。这里选择了有限元方法以解析扩散方程,因为它没有考虑系统的几何形状或均匀性的限制。尽管如此,它是时间和记忆消耗的,主要是因为所涉及的矩阵的大尺寸。我们的主要目标是减少模型,以加快模型计算。为此,选择了一种基于多分辨率技术的新方法。在PDE的离散版本中出现的所有矩阵被投射到正常的小波基础上,并根据多分辨率的方法减少。利用第一阶分辨率,该压缩导致初始维度的因子2×2的减小,矩阵的反转速度快大约4倍。进行了对幻像的验证研究,以评估这种减少方法的可行性。

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