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首页> 外文期刊>ACM Transactions on Design Automation of Electronic Systems >A Memetic Approach to the Automatic Design of High-Performance Analog Integrated Circuits
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A Memetic Approach to the Automatic Design of High-Performance Analog Integrated Circuits

机译:高性能模拟集成电路自动设计的模因方法

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摘要

This article introduces an evolution-based methodology, named memetic single-objective evolutionary algorithm (MSOEA), for automated sizing of high-performance analog integrated circuits. Memetic algorithms may achieve higher global and local search ability by properly combining operators from different standard evolutionary algorithms. By integrating operators from the differential evolution algorithm, from the real-coded genetic algorithm, operators inspired by the simulated annealing algorithm, and a set of constraint handling techniques, MSOEA specializes in handling analog circuit design problems with numerous and tight design constraints. The method has been tested through the sizing of several analog circuits. The results show that design specifications are met and objective functions are highly optimized. Comparisons with available methods like genetic algorithm and differential evolution in conjunction with static penalty functions, as well as with intelligent selection-based differential evolution, are also carried out, showing that the proposed algorithm has important advantages in terms of constraint handling ability and optimization quality.
机译:本文介绍了一种基于进化的方法,称为模因单目标进化算法(MSOEA),用于自动确定高性能模拟集成电路的大小。通过适当地组合来自不同标准进化算法的算子,模因算法可以实现更高的全局和局部搜索能力。通过集成差分进化算法,实编码遗传算法的运算符,受模拟退火算法启发的运算符以及一组约束处理技术,MSOEA专门处理具有众多严格设计约束的模拟电路设计问题。该方法已通过确定几个模拟电路的大小进行了测试。结果表明,符合设计规范,目标函数得到了高度优化。还与遗传算法和差分进化结合静态惩罚函数以及基于智能选择的差分进化等可用方法进行了比较,表明所提出的算法在约束处理能力和优化质量方面具有重要优势。 。

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