DocumentCode :
2066029
Title :
Reduction of Crosstalk Pessimism Using Tendency Graph Approach
Author :
Palla, Murthy ; Koch, Klaus ; Bargfrede, Jens ; Glesner, Manfred ; Anheier, Walter
Author_Institution :
Infineon Technol. AG, Munich
fYear :
2007
fDate :
1-4 Oct. 2007
Firstpage :
50
Lastpage :
55
Abstract :
Accurate estimation of worst-case crosstalk effects is critical for a realistic estimation of the worst-case behavior of deep sub-micron circuits. Crosstalk analysis models usually assume that the worst-case crosstalk occurs with all the aggressors of a victim (net or path) simultaneously inducing crosstalk even though this may not be possible at all. This overestimated crosstalk is called false noise. Logic correlations have been explored to reduce false noise in J.C. Beck, et al., (2004), which also used branch and bound method to solve the problem. In this paper, we propose a novel approach, named tendency graph approach (TGA), which preprocesses the logic constraints of the circuit to drastically speed up the fundamental branch and bound algorithm. The new approach has been implemented in C++ and tested on an industrial circuit in a current 90 nm technology, demonstrating that TGA considerably accelerates the solution to the false noise problem, and makes in many cases branch and bound feasible in the first place.
Keywords :
crosstalk; graph theory; logic circuits; logic design; branch and bound method; crosstalk analysis models; crosstalk pessimism reduction; deep submicron circuits; false noise; logic constraints; logic correlations; tendency graph approach; Acceleration; Algorithm design and analysis; Circuit noise; Circuit testing; Crosstalk; Delay; Logic circuits; Microelectronics; Switches; Timing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Design, 2006. ICCD 2006. International Conference on
Conference_Location :
San Jose, CA
ISSN :
1063-6404
Print_ISBN :
978-0-7803-9707-1
Electronic_ISBN :
1063-6404
Type :
conf
DOI :
10.1109/ICCD.2006.4380793
Filename :
4380793
Link To Document :
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