DocumentCode :
107835
Title :
Macromodel-Based Iterative Solvers for Simulation of High-Speed Links With Nonlinear Terminations
Author :
Olivadese, Salvatore Bernardo ; Grivet-Talocia, Stefano ; Siviero, Claudio ; Kaller, Dierk
Author_Institution :
Dept. of Electron. & Telecommun., Politec. di Torino, Turin, Italy
Volume :
4
Issue :
11
fYear :
2014
fDate :
Nov. 2014
Firstpage :
1847
Lastpage :
1861
Abstract :
Data transmission on high-speed channels may be affected by several undesired effects, including coupling from nearby interconnects, dispersion, losses, signal reflections from terminations and from internal discontinuities, and nonlinear/dynamic effects of drivers and receivers. The latter are often neglected, leading to very fast solvers, whose results may, however, be questionable when driver/receiver nonlinearities are important. This paper presents a framework for the transient analysis of complex high-speed channels with arbitrary nonlinear termination circuits. The approach is based on decoupling channel and terminations through a scattering-based waveform relaxation (WR) formulation. The channels are here cast as delay-rational macromodels, which are solved in discrete time domain through fast delayed recursive convolutions. The terminations can be either arbitrary circuits, solved by SPICE, or nonlinear behavioral macromodels, which are here formulated in discrete-time scattering representations. To overcome the known convergence issues of standard WR methods, we apply here more general iterative solution schemes, such as generalized minimal residual and biconjugate gradient stabilized, integrated into inexact Newton iterations, obtaining a set of numerical schemes with guaranteed convergence. The excellent performance of the proposed approach is illustrated on a large set of benchmarks.
Keywords :
Newton method; integrated circuit interconnections; integrated circuit modelling; recursive estimation; Newton iterations; SPICE; arbitrary nonlinear termination circuits; complex high-speed channels; decoupling channel; delay-rational macromodels; discrete time domain; discrete-time scattering representations; fast delayed recursive convolutions; high-speed links; iterative solution schemes; macromodel-based iterative solvers; nonlinear behavioral macromodels; nonlinear terminations; scattering-based waveform relaxation formulation; transient analysis; Convergence; Integrated circuit modeling; Ports (Computers); Receivers; Scattering; Transient analysis; Vectors; Behavioral modeling; delay extraction; high-speed interconnects; inexact Newton methods; macromodeling; rational approximation; scattering; waveform relaxation (WR); waveform relaxation (WR).;
fLanguage :
English
Journal_Title :
Components, Packaging and Manufacturing Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
2156-3950
Type :
jour
DOI :
10.1109/TCPMT.2014.2359982
Filename :
6923458
Link To Document :
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