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Symbolic analysis of analog circuits with hard nonlinearity
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Source Annual ACM IEEE Design Automation Conference archive
Proceedings of the 40th annual Design Automation Conference table of contents
Anaheim, CA, USA
SESSION: Mixed-signal design and simulation table of contents
Pages: 542 - 545  
Year of Publication: 2003
ISBN:1-58113-688-9
Authors
Alicia Manthe  University of Washington, Seattle, WA
Zhao Li  University of Washington, Seattle, WA
C.-J. Richard Shi  University of Washington, Seattle, WA
Sponsor
ACM: Association for Computing Machinery
Publisher
ACM  New York, NY, USA
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ABSTRACT

A new methodology is presented to solve a strongly nonlinear circuit, characterized by Piece-Wise Linear (PWL) functions, symbolically and explicitly in terms of its circuit parameters and is amenable to computer implementation. The method is based on a modified nodal formulation of piecewise linear circuit equations as a mixed Linear Complementarity Problem (MLCP). The technique of determinant-decision diagrams is applied to implement the symbolic transformation of the MLCP to the standard LCP. Complementarity-decision diagrams are used to represent the resulting LCP. Examples are presented that demonstrate the accuracy and efficiency of the proposed method.


REFERENCES

Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.

 
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Collaborative Colleagues:
Alicia Manthe: colleagues
Zhao Li: colleagues
C.-J. Richard Shi: colleagues