Title :
Multiscale decomposition based analysis of PEEC models
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
Abstract :
The high level of integration has made the analysis and design of integrated circuits and packages increasingly challenging. Hence, there exists an urgent need to reduce the computational complexity of existing numerical methods. The integral equation based method known as the Partial Element Equivalent Circuit (PEEC) method naturally generates an equivalent circuit which can be analyzed in both the time and frequency domains. The enforcement of Kirchoff laws to the equivalent circuit can easily result into a very large set of equations whose solution can be extremely time consuming. In this paper, a new frequency-domain nodal analysis PEEC solver is proposed which is based on the adaptive cross approximation and recursive partitioned matrix inverse formula. The proposed approach provides a significant computational speedup, while preserving the accuracy. The efficiency of the proposed method is demonstrated through its application to a relevant interconnect problem.
Keywords :
approximation theory; equivalent circuits; frequency-domain analysis; integral equations; matrix inversion; time-domain analysis; Kirchoff laws; PEEC model; adaptive cross approximation; computational complexity; frequency domain nodal analysis; integral equation based method; integrated circuit design; integrated circuit package; multiscale decomposition based analysis; numerical method; partial element equivalent circuit method; recursive partitioned matrix inverse formula; time domain analysis; Admittance; Approximation methods; Computational modeling; Linear systems; Mathematical model; Matrix decomposition; Transmission line matrix methods;
Conference_Titel :
Electromagnetics in Advanced Applications (ICEAA), 2013 International Conference on
Conference_Location :
Torino
Print_ISBN :
978-1-4673-5705-0
DOI :
10.1109/ICEAA.2013.6632412