DocumentCode :
1125555
Title :
An ECO routing algorithm for eliminating coupling-capacitance violations
Author :
Xiang, Hua ; Chao, Kai-Yuan ; Wong, Martin D F
Author_Institution :
IBM T. J. Watson Res. Center, Yorktown Heights, NY
Volume :
25
Issue :
9
fYear :
2006
Firstpage :
1754
Lastpage :
1762
Abstract :
Engineering change order changes are almost inevitable in the late stages of a design process. Based on an existing design, incremental change is favored since it can avoid considerable efforts of redoing the whole process and can minimize the disturbance on the existing converged design. The coupling-capacitance violation elimination (CVE) problem is addressed. Due to the changes in the multiple layer routing design, the total coupling capacitance on some signal wire segments on a layer may be larger than their allowable bounds after postlayout timing/noise analysis. The target is to find a new routing solution without coupling-capacitance violations under certain constraints, which helps to keep the new design close to the original one. This paper proposes a two-stage algorithm to solve CVE problems, and present optimization strategies to speed up the execution. Experimental results demonstrate the efficiency and effectiveness of this algorithm
Keywords :
capacitance; circuit layout CAD; integrated circuit layout; integrated circuit noise; network routing; CVE problem; ECO routing algorithm; coupling-capacitance violation elimination; design process; engineering change order; multiple layer routing design; noise analysis; optimization strategies; postlayout timing; signal wire segments; Algorithm design and analysis; Capacitance; Chaos; Crosstalk; Helium; Rails; Routing; Semiconductor device noise; Signal design; Wires; Coupling capacitance; engineering change order (ECO); routing;
fLanguage :
English
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0070
Type :
jour
DOI :
10.1109/TCAD.2005.857396
Filename :
1673749
Link To Document :
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