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Parallel Adaptive Finite Element Simulation for Optical Molecular Imaging with Simplified Spherical Harmonics Approximation

机译:具有简化球形谐波近似的光学分子成像的平行自适应有限元模拟

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Whole-body optical molecular imaging is rapidly developing for preclinical research. It is essential and necessary to develop novel simulation methods of light propagation for optical imaging, especially when a priori knowledge, large-volume domain and wide-range optical properties need to be considered in the reconstruction algorithm. In this paper, we develop a three dimensional parallel adaptive finite element method with simplified spherical harmonics (SP_N) approximation to simulate photon propagation in large-volume heterogeneous tissues. Simulation speed is significantly improved by a posteriori parallel adaptive mesh refinement and dynamic mesh repartitioning. Compared with the diffusion equation, SP_N method shows improved performance and the necessity of high-order approximation in heterogeneous domains. Optimal solver selection and time-costing analysis in real mouse geometry further improve the performance of the proposed algorithm.
机译:全身光学分子成像迅速发展临床前研究。为光学成像开发新颖的仿真方法是必要的,需要,特别是当在重建算法中考虑先验知识,大容量域和宽范围的光学特性时。在本文中,我们开发了一种三维并联自适应有限元方法,具有简化的球形谐波(SP_N)近似以模拟大体积异质组织中的光子传播。通过后验并联自适应网格精制和动态网格次级分配显着提高模拟速度。与扩散方程相比,SP_N方法显示出改善的性能和异质域中的高级近似的必要性。实际鼠标几何中的最佳求解器选择和时间成本分析进一步提高了所提出的算法的性能。

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