Title :
A Practical Regularization Technique for Modified Nodal Analysis in Large-Scale Time-Domain Circuit Simulation
Author :
Chen, Quan ; Weng, Shih-Hung ; Cheng, Chung-Kuan
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Hong Kong, Pokfulam, China
fDate :
7/1/2012 12:00:00 AM
Abstract :
Fast full-chip time-domain simulation calls for advanced numerical integration techniques with capability to handle the systems with (tens of) millions of variables resulting from the modified nodal analysis (MNA). General MNA formulation, however, leads to a differential algebraic equation (DAE) system with singular coefficient matrix, for which most of explicit methods, which usually offer better scalability than implicit methods, are not readily available. In this paper, we develop a practical two-stage strategy to remove the singularity in MNA equations of large-scale circuit networks. A topological index reduction is first applied to reduce the DAE index of the MNA equation to one. The index-1 system is then fed into a systematic process to eliminate excess variables in one run, which leads to a nonsingular system. The whole regularization process is devised with emphasis on exact equivalence, low complexity, and sparsity preservation, and is thus well suited to handle extremely large circuits.
Keywords :
circuit simulation; differential equations; integrated circuit design; advanced numerical integration; differential algebraic equation; explicit methods; full-chip time-domain simulation; large-scale time-domain circuit simulation; modified nodal analysis; nonsingular system; singular coefficient matrix; sparsity preservation; topological index reduction; Capacitors; Equations; Indexes; Inductors; Mathematical model; Systematics; Topology; Explicit method; graph theory; index reduction; modified nodal analysis (MNA); singular matrix;
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TCAD.2012.2184761