一种两级高压驱动自适应多目标进化算法及其在固定极性reed-muller电路中的应用

IF 7.5 1区 计算机科学 Q1 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE
Lu Yang , Shengsheng Wang , Ruyi Dong , Zihao Fu
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引用次数: 0

摘要

为了平衡收敛性和多样性,提出了一种两阶段hv驱动的自适应多目标进化算法(TSAMEA)。tamea采用正弦递减参数调整法提高第一阶段的勘探速度。自适应参数控制机制利用历史内存池和hv驱动度调整策略实现第二阶段的更好利用。大量的实验数据表明,TSAMEA优于其他九种比较moea。成分分析说明了tamea各成分的药效。此外,面积和功耗优化是目前芯片设计的主要限制因素,将TSAMEA应用于固定极性Reed-Muller (FPRM)逻辑电路的面积和功耗优化并取得了良好的效果,进一步验证了TSAMEA解决实际问题的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A two-stage HV-driven adaptive multi-objective evolutionary algorithm and its application in fixed polarity reed-muller circuits
To achieve a balance between convergence and diversity, we proposed a two-stage HV-driven adaptive multi-objective evolutionary algorithm (TSAMEA). TSAMEA employs a sinusoidal decreasing parameter adjustment method to enhance exploration pace in the first stage. An adaptive parameter control mechanism utilizes historical memory pools and an HV-driven degree adjustment strategy to achieve better exploitation in the second stage. Extensive experimental data demonstrate that TSAMEA outperforms nine other compared MOEAs. The component analysis illustrates the efficacy of each component of TSAMEA. In addition, area and power optimization are now the main limitations in chip design, TSAMEA is applied to area and power optimization for Fixed Polarity Reed-Muller (FPRM) logic circuits and perform well, which further verifies the ability of the TSAMEA to solve practical problems.
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来源期刊
Expert Systems with Applications
Expert Systems with Applications 工程技术-工程:电子与电气
CiteScore
13.80
自引率
10.60%
发文量
2045
审稿时长
8.7 months
期刊介绍: Expert Systems With Applications is an international journal dedicated to the exchange of information on expert and intelligent systems used globally in industry, government, and universities. The journal emphasizes original papers covering the design, development, testing, implementation, and management of these systems, offering practical guidelines. It spans various sectors such as finance, engineering, marketing, law, project management, information management, medicine, and more. The journal also welcomes papers on multi-agent systems, knowledge management, neural networks, knowledge discovery, data mining, and other related areas, excluding applications to military/defense systems.
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