skip to main content
10.5555/602902.602964acmconferencesArticle/Chapter ViewAbstractPublication PagesiccadConference Proceedingsconference-collections
Article
Free access

Efficient finite-difference method for quasi-periodic steady-state and small signal analyses

Published: 05 November 2000 Publication History

Abstract

This paper discusses a finite-difference mixed frequency-time (MFT) method for the quasi-periodic steady-state analysis and introduces the quasi-periodic small signal analysis. A new approach for solving the huge nonlinear system the MFT finite difference method generates from practical circuits is given, which makes efficient frequency-sweeping quasi-periodic small-signal analysis possible. The new efficient solving technique works well with the Krylovsubspace recycling or reuse [4], which can not be achieved with existing techniques. In addition, this paper gives a way to calculate the quasi-periodic Fourier integration weights, necessary in the adjoint MFT small-signal analyses, and a way to calculate quasi-periodic large-signal Fourier spectrum that is more efficient than existing methods. Numerical examples also show that the finite-difference MFT method can be significantly more accurate than shooting-Newton MFT method and the new preconditioning technique is more efficient.

References

[1]
D. Feng, J. Phillips, K. Nabors, K. Kundert and J. White, Efficient computation of quasi-periodic circuit operating conditions using a mixed frequency/time approach, Proc. 36th Design Automation Conference, New Orleans, LA, June, 1999.
[2]
B. Yang and J. Phillips, A multi-interval Chebyshev collocation method for efficient high-accuracy RF circuit simulation, to appear in Proc. 36th Design Automation Conference, 2000.
[3]
J. Roychowdhury and D. Long and P. Feldmann, Cyclostationary noise analysis of large RF circuits with multitone excitations, IEEE J. Sol. St. Circuits, vol. 33, pp. 324-336, 1998.
[4]
D. Feng, unpublished.
[5]
R. Melville and P. Feldmann and J. Roychowdhury, Efficient multi-tone distortion analysis of analog integrated circuits, Proc. Custom Integrated Circuits Conference, May, 1995.
[6]
R. Telichevesky and J. White and K. Kundert, Receiver characterization using periodic small-signal analysis, Proceedings of the Custom Integrated Circuits Conference, May, 1996.
[7]
J. Roychowdhury, Efficient methods for simulating highly nonlinear multirate circuits, Proc. 34th Design Automation Conference, Anaheim, CA, June, 1997.

Cited By

View all

Recommendations

Comments

Information & Contributors

Information

Published In

cover image ACM Conferences
ICCAD '00: Proceedings of the 2000 IEEE/ACM international conference on Computer-aided design
November 2000
558 pages
ISBN:0780364481

Sponsors

Publisher

IEEE Press

Publication History

Published: 05 November 2000

Check for updates

Qualifiers

  • Article

Conference

ICCAD '00
Sponsor:
ICCAD '00: International Conference on Computer Aided Design
November 5 - 9, 2000
California, San Jose

Acceptance Rates

Overall Acceptance Rate 457 of 1,762 submissions, 26%

Upcoming Conference

ICCAD '24
IEEE/ACM International Conference on Computer-Aided Design
October 27 - 31, 2024
New York , NY , USA

Contributors

Other Metrics

Bibliometrics & Citations

Bibliometrics

Article Metrics

  • Downloads (Last 12 months)25
  • Downloads (Last 6 weeks)10
Reflects downloads up to 14 Sep 2024

Other Metrics

Citations

Cited By

View all

View Options

View options

PDF

View or Download as a PDF file.

PDF

eReader

View online with eReader.

eReader

Get Access

Login options

Media

Figures

Other

Tables

Share

Share

Share this Publication link

Share on social media