Proceedings. 42nd Design Automation Conference, 2005. · 2005 · 57 citations · 8 references
EngineeringVlsi DesignComputer ArchitectureClock SynchronizationStatistical Timing AnalysisPhysical Design (Electronics)Timing AnalysisTimefrequency AnalysisElectrical EngineeringComputer EngineeringCircuit DesignersComputer ScienceCircuit SizeMicroelectronicsFunctional Data AnalysisSignal ProcessingCircuit DesignNon-gaussian Delay DistributionsCircuit Simulation
Process variations have a growing impact on circuit performance for today's integrated circuit (IC) technologies. The Non-Gaussian delay distributions as well as the correlations among delays make statistical timing analysis more challenging than ever. In this paper, we present an efficient block-based statistical timing analysis approach with linear complexity with respect to the circuit size, which can accurately predict Non-Gaussian delay distributions from realistic nonlinear gate and interconnect delay models. This approach accounts for all correlations, from manufacturing process dependence, to re-convergent circuit paths to produce more accurate statistical timing predictions. With this approach, circuit designers can have increased confidence in the variation estimates, at a low additional computation cost.
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First-order incremental block-based statistical timing analysis
C. Visweswariah, Kaushik Ravindran, Kerim Kalafala et al. · 2004 · 653 citations
Modeling and analysis of manufacturing variations
Sani Nassif · 2002 · 427 citations