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Robust gate sizing by Uncertainty Second Order Cone

机译:不确定性二阶锥的鲁棒门尺寸

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The accuracy of estimation of gate sizing variations becomes a dominant factor in automation design of transistor gate sizing. This paper proposes a new Uncertainty Second Order Cone (USOC) estimation model, which is applied to optimize the gate sizes considering random parameters variations and circuit uncertainties. Different from present researcher's favorite Uncertainty Ellipsoid (UE) method of random variation estimation, USOC model imposes no requirement on parameter correlations and no prerequisite on their distributions. This important advantage extends USOC model to more general applications with more accuracy. With parameter variations characterized in USOC representation, the robust gate sizing problem can be conveniently formulated into a standard Geometric Program (GP), which can be efficiently solved by convex optimization techniques. Experimental results on ISCAS benchmark circuit show that the new estimation model improves the accuracy of gate sizing problem by up to 21% compared with UE method.
机译:估算栅极尺寸变化的准确性成为晶体管栅极尺寸调整自动化设计中的主要因素。本文提出了一种新的不确定度二阶锥(USOC)估计模型,该模型用于考虑随机参数变化和电路不确定性来优化门尺寸。与当前研究人员喜欢的不确定性椭圆体(UE)随机变异估计方法不同,USOC模型对参数相关性没有任何要求,对其分布也没有任何先决条件。这一重要优势将USOC模型以更高的精度扩展到了更通用的应用程序中。利用USOC表示法中的参数变化,可以将鲁棒的选型问题方便地公式化为标准几何程序(GP),可以通过凸优化技术有效地解决该问题。在ISCAS基准电路上的实验结果表明,与UE方法相比,新的估计模型将门选型问题的准确性提高了21%。

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