Semi-analytical current source modeling of near-threshold operating logic cells considering process variations
Qing Yan Xie, Tiansong Cui, Yanzhi Wang, Shahin Nazarian, Massoud Pedram
Abstract
Qing Yan Xie, Tiansong Cui, Yanzhi Wang, Shahin Nazarian, Massoud Pedram
Abstract
Operating circuits in the ultra-low voltage regime results in significantly lower power consumption but can also degrade the circuit performance. In addition, it leads to higher sensitivity to various sources of variability in VLSI circuits. This paper extends the current source modeling (CSM) technique, which has successfully been applied to VLSI circuits to achieve very high accuracy in timing analysis, to the near-threshold voltage regime. In particular, it shows how to combine non-linear analytical models and low-dimensionality CSM lookup tables to simultaneously achieve modeling accuracy, space and time efficiency, when performing CSM-based timing analysis of VLSI circuits operating in near-threshold regime and subject to process variability effects.
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Operating circuits in the ultra-low voltage regime results in significantly lower power consumption but can also degrade the circuit performance. In addition, it leads to higher sensitivity to various sources of variability in VLSI circuits. This paper extends the current source modeling (CSM) technique, which has successfully been applied to VLSI circuits to achieve very high accuracy in timing analysis, to the near-threshold voltage regime. In particular, it shows how to combine non-linear analytical models and low-dimensionality CSM lookup tables to simultaneously achieve modeling accuracy, space and time efficiency, when performing CSM-based timing analysis of VLSI circuits operating in near-threshold regime and subject to process variability effects.
Key concepts: Very-large-scale integration, Electronic circuit, Electronic engineering, Computer science, Static timing analysis, Process (computing), Sensitivity (control systems), Logic gate