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Parallel simulation of anisotropic diffusion with human brain DT-MRI Data

机译:人脑DT-MRI数据对各向异性扩散的并行模拟

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摘要

We conduct simulations for the 3D unsteady state anisotropic diffusion process with DT-MRI data in the human brain by discretizing the governing diffusion equation on Cartesian grid and adopting a high performance differential-algebraic equation (DAE) solver, the parallel version of implicit differential-algebraic (IDA) solver, to tackle the resulting large scale system of DAEs. Parallel preconditioning techniques including sparse approximate inverse and banded-block-diagonal preconditioners are used with the GMRES method to accelerate the convergence rate of the iterative solution. We then investigate and compare the efficiency and effectiveness of the two parallel preconditioners. The experimental results of the diffusion simulations on a parallel supercomputer show that the sparse approximate inverse preconditioning strategy, which is robust and efficient with good scalability, gives a much better overall performance than the banded-block-diagonal preconditioner.
机译:我们通过在笛卡尔网格上离散控制扩散方程并采用高性能微分代数方程(DAE)求解器(隐式微分方程的并行版本)对人脑中的DT-MRI数据进行3D非稳态各向异性扩散过程的仿真。代数(IDA)求解器,以解决由此产生的大规模DAE系统。并行稀疏技术包括稀疏近似逆和带状块对角形预处理器,与GMRES方法一起使用,以加快迭代解的收敛速度。然后,我们调查并比较两个并行预处理器的效率和有效性。在并行超级计算机上进行扩散模拟的实验结果表明,稀疏近似逆预处理策略是鲁棒且高效的,具有良好的可伸缩性,与带状块对角预处理器相比,其整体性能要好得多。

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