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Self-adaptive differential evolution algorithm with α-constrained-domination principle for constrained multi-objective optimization

机译:约束多目标优化的α约束支配自适应微分进化算法

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摘要

Real-world problems are inherently constrained optimization problems often with multiple conflicting objectives. To solve such constrained multi-objective problems effectively, in this paper, we put forward a new approach which integrates self-adaptive differential evolution algorithm with α-constrained-domination principle, named SADE-αCD. In SADE-αCD, the trial vector generation strategies and the DE parameters are gradually self-adjusted adaptively based on the knowledge learnt from the previous searches in generating improved solutions. Furthermore, by incorporating domination principle into α-constrained method, α-constrained-domination principle is proposed to handle constraints in multi-objective problems. The advantageous performance of SADE-αCD is validated by comparisons with non-dominated sorting genetic algorithm-II, a representative of state-of-the-art in multi-objective evolutionary algorithms, and constrained multi-objective differential evolution, over fourteen test problems and four well-known constrained multi-objective engineering design problems. The performance indicators show that SADE-αCD is an effective approach to solving constrained multi-objective problems, which is basically enabled by the integration of self-adaptive strategies and α-constrained-domination principle.
机译:实际问题通常是具有多个相互矛盾的目标的固有约束优化问题。为了有效解决此类约束多目标问题,本文提出了一种将自适应差分演化算法与α约束支配原理相结合的新方法,即SADE-αCD。在SADE-αCD中,基于从以前的搜索中学到的知识,在生成改进的解决方案的过程中,逐渐自适应地自动调整试验矢量的生成策略和DE参数。此外,通过将支配原理结合到α约束方法中,提出了α约束支配原理来处理多目标问题中的约束。通过与非支配排序遗传算法-II(代表多目标进化算法中的最新技术以及受约束的多目标差分演化)进行比较,验证了SADE-αCD的优越性能,共解决了十四个测试问题以及四个著名的受约束多目标工程设计问题。性能指标表明,SADE-αCD是解决约束多目标问题的有效方法,基本上是通过自适应策略和α约束支配原理的集成而实现的。

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