DocumentCode
726434
Title
An algorithmic framework for efficient large-scale circuit simulation using exponential integrators
Author
Hao Zhuang ; Wenjian Yu ; Ilgweon Kang ; Xinan Wang ; Chung-kuan Cheng
Author_Institution
Dept. of Comput. Sci. & Eng., Univ. of California, San Diego, La Jolla, CA, USA
fYear
2015
fDate
8-12 June 2015
Firstpage
1
Lastpage
6
Abstract
We propose an efficient algorithmic framework for time-domain circuit simulation using exponential integrators. This work addresses several critical issues exposed by previous matrix exponential based circuit simulation research, and makes it capable of simulating stiff nonlinear circuit system at a large scale. In this framework, the system´s nonlinearity is treated with exponential Rosenbrock-Euler formulation. The matrix exponential and vector product is computed using invert Krylov subspace method. Our proposed method has several distinguished advantages over conventional formulations (e.g., the well-known backward Euler with Newton-Raphson method). The matrix factorization is performed only for the conductance/resistance matrix G, without being performed for the combinations of the capacitance/inductance matrix C and matrix G, which are used in traditional implicit formulations. Furthermore, due to the explicit nature of our formulation, we do not need to repeat LU decompositions when adjusting the length of time steps for error controls. Our algorithm is better suited to solving tightly coupled post-layout circuits in the pursuit for full-chip simulation. Our experimental results validate the advantages of our framework.
Keywords
Newton-Raphson method; circuit simulation; integrating circuits; large scale integration; matrix decomposition; time-domain analysis; Krylov subspace method; LU decomposition; Newton-Raphson method; backward Euler; conductance matrix; error control; exponential Rosenbrock-Euler formulation; exponential integrator; inductance matrix; large-scale circuit simulation; matrix exponential; matrix factorization; nonlinear circuit system; post-layout circuit; resistance matrix; time-domain circuit simulation; Circuit simulation; Computational modeling; Erbium; Integrated circuit modeling; Jacobian matrices; Matrix decomposition; Standards; Circuit Simulation; Exponential Integrators; Transient Simulation;
fLanguage
English
Publisher
ieee
Conference_Titel
Design Automation Conference (DAC), 2015 52nd ACM/EDAC/IEEE
Conference_Location
San Francisco, CA
Type
conf
DOI
10.1145/2744769.2744793
Filename
7167349
Link To Document