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A dynamic multi-objective optimization evolutionary algorithm for complex environmental changes

机译:复杂环境变化的动态多目标优化进化算法

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Dynamic multi-objective optimization problems (DMOPs) have attracted more and more research in the field of evolutionary computation community in recent years. Unlike most existing approaches just for solving a single change type, we propose a novel dynamic diversity introduction strategy (DDIS), which aims to solve DMOPs with mixed complex environmental changes. Two types of change intensity are presented to jointly determine the proportion of diversity introduction and whether the change type is drastic or slow, and then the inverse modeling and partial population random initialization are served as diversity introduction strategies to respond to environmental changes respectively. The proposed DDIS is incorporated into the multi-objective evolutionary algorithm based on decomposition (MOEA/D) framework, called DDIS-MOEA/D. For verifying the performance of DDIS, three different mixed change types are constructed by varying severity or frequency of changes and then the proposed algorithm is tested on GTA benchmark problems under the three dynamic characteristics. Experimental results confirm that the proposed approach can successfully identify different change types and dynamically track and adapt complex environmental changes. (C) 2020 Elsevier B.V. All rights reserved.
机译:近年来,动态多目标优化问题(DMOPS)吸引了进化计算界领域的越来越多。与用于解决单一变化类型的最具现有方法不同,我们提出了一种新颖的动态分集介绍策略(DDIS),旨在解决具有混合复杂环境变化的DMOPS。提出了两种类型的变化强度,共同确定了多样性介绍的比例,并且改变类型是剧烈的还是缓慢,然后逆建模和部分人口随机初始化被用作分别介绍环境变化的分化策略。所提出的DDIS纳入基于分解(MOEA / D)框架的多目标进化算法,称为DDIS-MOEA / D.为了验证DDI的性能,通过改变的严重性或变化频率来构建三种不同的混合变化类型,然后在三个动态特性下对GTA基准问题进行测试。实验结果证实,该方法可以成功识别不同的变化类型和动态跟踪和适应复杂的环境变化。 (c)2020 Elsevier B.v.保留所有权利。

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