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A multi-tier adaptive grid algorithm for the evolutionary multi-objective optimisation of complex problems

机译:一种多层自适应网格算法,用于复杂问题的进化多目标优化

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摘要

The multi-tier Covariance Matrix Adaptation Pareto Archived Evolution Strategy (m-CMA-PAES) is an evolutionary multi-objective optimisation (EMO) algorithm for real-valued optimisation problems. It combines a non-elitist adaptive grid based selection scheme with the efficient strategy parameter adaptation of the elitist Covariance Matrix Adaptation Evolution Strategy (CMA-ES). In the original CMA-PAES, a solution is selected as a parent for the next population using an elitist adaptive grid archiving (AGA) scheme derived from the Pareto Archived Evolution Strategy (PAES). In contrast, a multi-tiered AGA scheme to populate the archive using an adaptive grid for each level of non-dominated solutions in the considered candidate population is proposed. The new selection scheme improves the performance of the CMA-PAES as shown using benchmark functions from the ZDT, CEC09, and DTLZ test suite in a comparison against the Multi-Objective Covariance Matrix Adaptation Evolution Strategy (MO-CMA-ES). In comparison with MO-CMA-ES, the experimental results show that the proposed algorithm offers up to a 69 % performance increase according to the Inverse Generational Distance (IGD) metric.
机译:多层协方差矩阵适应帕累托存档的演化策略(M-CMA-PAE)是一种进化的多目标优化(EMO)算法,用于实值优化问题。它结合了基于非精华自适应网格的选择方案,利用Elitist协方差矩阵自适应演化策略(CMA-ES)的有效策略参数适应。在原始的CMA-PAE中,使用从帕累托存档的演化策略(PAES)的Elitist Adaptive网格归档(AGA)方案来选择一个解决方案作为下一个群体的父级。相比之下,提出了一种使用适应网格在所考虑的候选人群体中使用自适应网格填充存档的多层AGA方案。新的选择方案可以通过使用来自ZDT,CEC09和DTLZ测试套件的基准功能来提高CMA-PAE的性能,以与多目标协方差矩阵适应演化策略(MO-CMA-es)进行比较。与MO-CMA-ES相比,实验结果表明,该算法根据逆代代数(IGD)度量,提供了高达69%的性能增加。

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