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DESA: a new hybrid global optimization method and its application to analog integrated circuit sizing

机译:DESA:一种新的混合全局优化方法及其在模拟集成电路尺寸确定中的应用

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This paper presents a new hybrid global optimization method referred to as DESA. The algorithm exploits random sampling and the metropolis criterion from simulated annealing to perform global search. The population of points and efficient search strategy of differential evolution are used to speed up the convergence. The algorithm is easy to implement and has only a few parameters. The theoretical global convergence is established for the hybrid method. Numerical experiments on 23 mathematical test functions have shown promising results. The method was also integrated into SPICE OPUS circuit simulator to evaluate its practical applicability in the area of analog integrated circuit sizing. Comparison was made with basic simulated annealing, differential evolution, and a multistart version of the constrained simplex method. The latter was already a part of SPICE OPUS and produced good results in past research.
机译:本文提出了一种新的混合全局优化方法,称为DESA。该算法利用随机采样和模拟退火的都会标准执行全局搜索。使用点的填充和有效的差分演化搜索策略来加快收敛速度​​。该算法易于实现,只有几个参数。建立了混合方法的理论全局收敛性。在23个数学测试函数上的数值实验显示了令人鼓舞的结果。该方法还集成到SPICE OPUS电路仿真器中,以评估其在模拟集成电路尺寸确定方面的实际适用性。比较了基本的模拟退火,差分演化和约束单纯形法的多起点版本。后者已经是SPICE OPUS的一部分,在过去的研究中取得了良好的结果。

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