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Regularized symmetric positive definite matrix factorizations for linear systems arising from RBF interpolation and differentiation

机译:RBF插值和微分产生的线性系统正则对称正定矩阵分解

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摘要

Scattered data interpolation using Radial Basis Functions involves solving an ill-conditioned symmetric positive definite (SPD) linear system (with appropriate selection of basis function) when the direct method is used to evaluate the problem. The standard algorithm for solving a SPD system is a Cholesky factorization. Severely ill-conditioned theoretically SPD matrices may not be numerically SPD (NSPD) in which case a Cholesky factorization fails. An alternative symmetric matrix factorization, the square root free Cholesky factorization, has the same flop count as a Cholesky factorization and is successful even when a matrix ceases to be NSPD. A regularization method can be used to prevent the failure of the Cholesky factorization and to improve the accuracy of both SPD matrix factorizations when the matrices are severely ill-conditioned. The specification of the regularization parameter is discussed as well as convergence/ stopping criteria for the algorithm. The formation of differentiation matrices with the regularized SPD factorizations is demonstrated to improve eigenvalue stability properties of RBF methods for hyperbolic PDEs.
机译:使用径向基函数的散乱数据插值涉及使用直接方法评估问题时求解病态对称正定(SPD)线性系统(通过适当选择基函数)。解决SPD系统的标准算法是Cholesky分解。从理论上讲,病态严重的SPD矩阵在数值上可能不是SPD(NSPD),在这种情况下,Cholesky分解失败。另一种可选的对称矩阵因式分解,即无平方根的Cholesky因式分解,具有与Cholesky因式分解相同的触发器计数,并且即使矩阵不再是NSPD也是成功的。当矩阵受到严重病害时,可以使用正则化方法来防止Cholesky分解的失败并提高两个SPD矩阵分解的准确性。讨论了正则化参数的规范以及算法的收敛/停止准则。证明了用正则化SPD因子分解形成微分矩阵可以改善RBF方法对双曲PDE的特征值稳定性。

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