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C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations

Publication ,  Journal Article
Zeng, W; Zhu, H; Zeng, X; Zhou, D; Liu, R; Li, X
Published in: IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems
June 1, 2017

Parametric yield estimation is a critical task for design and validation of analog and mixed-signal (AMS) circuits. However, the computational cost for yield estimation based on Monte Carlo (MC) analysis is often prohibitively high, especially when multiple circuit performances and/or environmental corners (e.g., voltage and temperature corners) are considered. In this paper, a novel statistical method named correlation-aided yield estimation (C-YES) is proposed to reduce the computational cost for parametric yield estimation. Our proposed approach exploits the fact that multiple circuit performances over different environmental corners are often correlated. Hence, we can accurately predict the performance value at one corner from the simulation results for other performances and/or corners. Based upon this observation, instead of running a large number of MC simulations to cover all performances and corners, an efficient algorithm is developed to select a small set of the most 'informative' simulations that should be performed for yield estimation. Our numerical experiments show that for parametric yield estimation with multiple circuit performances and environmental corners, C-YES achieves 6.5-9.3× runtime speedups over other conventional methods.

Duke Scholars

Published In

IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems

DOI

ISSN

0278-0070

Publication Date

June 1, 2017

Volume

36

Issue

6

Start / End Page

899 / 912

Related Subject Headings

  • Computer Hardware & Architecture
  • 4607 Graphics, augmented reality and games
  • 4009 Electronics, sensors and digital hardware
  • 1006 Computer Hardware
  • 0906 Electrical and Electronic Engineering
 

Citation

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Zeng, W., Zhu, H., Zeng, X., Zhou, D., Liu, R., & Li, X. (2017). C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations. IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems, 36(6), 899–912. https://doi.org/10.1109/TCAD.2016.2613927
Zeng, W., H. Zhu, X. Zeng, D. Zhou, R. Liu, and X. Li. “C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations.” IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems 36, no. 6 (June 1, 2017): 899–912. https://doi.org/10.1109/TCAD.2016.2613927.
Zeng W, Zhu H, Zeng X, Zhou D, Liu R, Li X. C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations. IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems. 2017 Jun 1;36(6):899–912.
Zeng, W., et al. “C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations.” IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems, vol. 36, no. 6, June 2017, pp. 899–912. Scopus, doi:10.1109/TCAD.2016.2613927.
Zeng W, Zhu H, Zeng X, Zhou D, Liu R, Li X. C-YES: An Efficient Parametric Yield Estimation Approach for Analog and Mixed-Signal Circuits Based on Multicorner-Multiperformance Correlations. IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems. 2017 Jun 1;36(6):899–912.

Published In

IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems

DOI

ISSN

0278-0070

Publication Date

June 1, 2017

Volume

36

Issue

6

Start / End Page

899 / 912

Related Subject Headings

  • Computer Hardware & Architecture
  • 4607 Graphics, augmented reality and games
  • 4009 Electronics, sensors and digital hardware
  • 1006 Computer Hardware
  • 0906 Electrical and Electronic Engineering