Title :
Full-wave analysis of high-speed interconnects using complex frequency hopping
Author :
Achar, Ramachandra ; Nakhla, Michel S. ; Zhang, Qi-Jun
Author_Institution :
Dept. of Electron., Carleton Univ., Ottawa, Ont., Canada
fDate :
10/1/1998 12:00:00 AM
Abstract :
Accurate simulation of large interconnect networks has become a necessity to address signal-integrity issues in current high-speed very-large-scale-integration designs. To accurately characterize a dispersive system of interconnects at higher frequencies, a full-wave analysis is required. However, conventional circuit simulation of interconnects with full-wave models is extremely CPU expensive. Recently published moment-matching techniques provide a generalized approach to lumped/distributed circuit response approximations. However, these techniques are based on quasi-transverse electromagnetic mode (TEM) assumption and have no mechanism to handle full-wave models. In this paper, we present a new method to extend model-reduction techniques for simulation of full-wave models. The following three new results are presented in this paper: 1) a generalized method to combine modal results from a full-wave analysis into circuit simulators; 2) a new algorithm for moment generation involving full-wave models; 3) deviations associated with quasi-TEM approximations compared to full-wave models at higher frequencies. The proposed algorithm yields a speed up of 1 to 2 orders of magnitude for a comparable accuracy with conventional techniques. In addition, the proposed method can be used for a mixed simulation involving distributed models with frequency dependent/independent RLCG parameters, full-wave interconnect models and measured subnetworks along with nonlinear terminations
Keywords :
VLSI; circuit simulation; distributed parameter networks; high-speed integrated circuits; integrated circuit interconnections; spectral-domain analysis; circuit simulation; complex frequency hopping; dispersive system; distributed models; frequency dependent RLCG parameters; frequency independent RLCG parameters; full-wave analysis; full-wave interconnect models; generalized method; high-speed VLSI designs; high-speed interconnects; large interconnect networks; mixed simulation; model-reduction techniques; moment generation algorithm; nonlinear terminations; quasi-TEM approximations; signal-integrity issues; very-large-scale-integration; Algorithm design and analysis; Analytical models; Circuit analysis; Circuit simulation; Dispersion; Electromagnetic modeling; Frequency; Integrated circuit interconnections; Signal design; Very large scale integration;
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on