DocumentCode :
31536
Title :
Efficient Frequency-Domain Analysis of PEEC Circuits Through Multiscale Compressed Decomposition
Author :
Antonini, Giulio ; Romano, Daniela
Author_Institution :
Dipt. di Ing. Ind. e dell´Inf. e di Econ., Univ. degli Studi dell´Aquila, L´Aquila, Italy
Volume :
56
Issue :
2
fYear :
2014
fDate :
Apr-14
Firstpage :
454
Lastpage :
465
Abstract :
The solution of mixed electromagnetic/circuit problems is important for the electromagnetic compatibility/signal integrity/power integrity system designs. The ever-increasing frequency content of signals and decrease of geometrical features requires the 3-D electromagnetic methods, such as the partial element equivalent circuit (PEEC) method, to be used for the analysis and design of high-speed circuits. Very large systems of equations are often produced and their efficient solution can be extremely challenging. In this paper, we propose a new frequency-domain PEEC solver which is based on the adaptive cross approximation and singular value decomposition. Taking advantage of the rank deficiency of the dense partial inductance and coefficient of potential matrices, a multiscale block decomposition is adopted to explicitly compute the inverse of the admittance matrix of the PEEC circuit. The proposed approach provides both speedup and memory storage saving, while preserving the accuracy. The efficiency of the proposed method is demonstrated through its application to the PEEC modeling of typical interconnect problems.
Keywords :
approximation theory; electromagnetic compatibility; equivalent circuits; frequency-domain analysis; singular value decomposition; 3D electromagnetic methods; PEEC circuit; PEEC method; adaptive cross approximation; admittance matrix; dense partial inductance; electromagnetic compatibility; frequency content; frequency-domain PEEC solver; geometrical features; high-speed circuits; memory storage saving; mixed electromagnetic circuit problems; multiscale block decomposition; partial element equivalent circuit method; potential matrices coefficient; power integrity system designs; rank deficiency; signal integrity; singular value decomposition; speedup; Admittance; Complexity theory; Equivalent circuits; Frequency-domain analysis; Mathematical model; Matrix decomposition; Symmetric matrices; Acceleration techniques; adaptive cross approximation (ACA); fast solvers; frequency-domain methods; multiscale block decomposition; partial element equivalent circuit (PEEC); singular value decomposition (SVD);
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2013.2281393
Filename :
6615932
Link To Document :
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