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ABSTRACT
This paper presents an efficient t o-stage project-and-balance scheme for passivity-preserving model order reduction. Orthogonal dominant eigenspace projection is implemented by integrating the Smith method and Krylov subspace iteration. It is followed by stochastic balanced truncation herein a novel method, based on the complete separation of stable and unstable invariant subspaces of a Hamiltonian matrix, is used for solving two dual algebraic Riccati equations at the cost of essentially one. A fast-converging quadruple-shift bulge-chasing SR algorithm is also introduced for this purpose. Numerical examples confirm the quality of the reduced-order models over those from conventional schemes.
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CITED BY 3
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Peng Li , Frank Liu , Xin Li , Lawrence T. Pileggi , Sani R. Nassif, Modeling Interconnect Variability Using Efficient Parametric Model Order Reduction, Proceedings of the conference on Design, Automation and Test in Europe, p.958-963, March 07-11, 2005
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