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An Effective Sparse Approximate Inverse Preconditioner for the MLFMA Solution of the Volume-Surface Integral Equation

机译:体积-表面积分方程MLFMA解的有效稀疏近似逆预处理器

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摘要

In the framework of the multilevel fast multipole algorithm (MLFMA), effective construction of the sparse approximate inverse preconditioner (SAIP) for the volume-surface integral equation (VSIE) is discussed. A high quality SAIP for the entire VSIE matrix is constructed by using the sub-matrix of the near-field interactions between the surface basis and testing functions arising from the surface integral equation alone. In addition, a simple sparse pattern selection scheme based on the geometrical information of nearby basis functions and octree regrouping strategy is proposed to enhance the efficiency of the SAIP. In contrast to the existing sparse pattern selection schemes, the proposed scheme utilizes the near-field matrix in the MLFMA more effectively with only one tuning parameter. Numerical results indicate that with the proposed scheme, both the memory usage and setup time for constructing an effective SAIP are significantly reduced without compromising the efficiency and robustness.
机译:在多级快速多极子算法(MLFMA)的框架内,讨论了针对体积-表面积分方程(VSIE)的稀疏近似逆预处理器(SAIP)的有效构造。通过使用表面基础和仅由表面积分方程产生的测试函数之间的近场相互作用的子矩阵,可以为整个VSIE矩阵构建高质量的SAIP。此外,提出了一种基于邻近基函数的几何信息和八叉树重组策略的稀疏模式选择方案,以提高SAIP的效率。与现有的稀疏模式选择方案相比,所提出的方案仅通过一个调整参数就更有效地利用了MLFMA中的近场矩阵。数值结果表明,通过所提出的方案,在不影响效率和鲁棒性的情况下,显着减少了用于构建有效SAIP的内存使用量和建立时间。

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