DocumentCode :
610248
Title :
Optimized waveform relaxation solution of RLCG transmission line type circuits
Author :
Al-Khaleel, M.D. ; Gander, Martin J. ; Ruehli, Albert E.
Author_Institution :
Yarmouk Univ., Irbid, Jordan
fYear :
2013
fDate :
17-19 March 2013
Firstpage :
136
Lastpage :
140
Abstract :
Today, parallel processing is necessary for the solution of large systems of ordinary differential equations (ODEs) as they are obtained from large electronic circuits or from discretizing partial differential equations (PDEs). Using a fine mesh in the discretization of these problems also leads to large compute times and large storage requirements. The waveform relaxation (WR) technique, which is ideally suited for the use of multiple processors for problems with multiple time scales has been used to solve such problems on parallel processors for such large systems of ODEs. However, applying the so-called classical WR techniques to strongly coupled systems leads to non-uniform slow convergence over a window in time for which the equations are integrated. In this paper, we present a so-called optimizedWR algorithm applied to transmission line circuit problems based on the longitudinal partitioning into segments. This greatly improves the convergence for strongly coupled RLCG transmission line (TL) type circuits. The method can be applied to other similar circuits. The method is based on optimal parameters that lead to the optimal convergence of the iterations. Here, we present a practical optimized WR algorithm which is easy to use and is computationally inexpensive.
Keywords :
RLC circuits; partial differential equations; transmission lines; waveform analysis; ODE; PDE; RLCG transmission line type circuits; TL type circuits; classical WR techniques; discretizing partial differential equations; electronic circuits; longitudinal partitioning; multiple processors; multiple time scales; nonuniform slow convergence; optimal convergence; optimal parameters; optimized waveform relaxation solution; ordinary differential equations; parallel processing; parallel processors; storage requirements; transmission line circuit; waveform relaxation technique; Algorithm design and analysis; Convergence; Integrated circuit modeling; Mathematical model; Numerical models; Partitioning algorithms; RLC circuits;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Innovations in Information Technology (IIT), 2013 9th International Conference on
Conference_Location :
Abu Dhabi
Type :
conf
DOI :
10.1109/Innovations.2013.6544407
Filename :
6544407
Link To Document :
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