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A Survey of Evolutionary Algorithms for Multi-Objective Optimization Problems With Irregular Pareto Fronts

机译:不规则帕累托前线多目标优化问题的进化算法调查

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摘要

Evolutionary algorithms have been shown to be very successful in solving multi-objective optimization problems(MOPs).However,their performance often deteriorates when solving MOPs with irregular Pareto fronts.To remedy this issue,a large body of research has been performed in recent years and many new algorithms have been proposed.This paper provides a comprehensive survey of the research on MOPs with irregular Pareto fronts.We start with a brief introduction to the basic concepts,followed by a summary of the benchmark test problems with irregular problems,an analysis of the causes of the irregularity,and real-world optimization problems with irregular Pareto fronts.Then,a taxonomy of the existing methodologies for handling irregular problems is given and representative algorithms are reviewed with a discussion of their strengths and weaknesses.Finally,open challenges are pointed out and a few promising future directions are suggested.
机译:进化算法已被证明在解决多目标优化问题(MOPS)方面非常成功。然而,当使用不规则的帕累托前线解决MOPS时,它们的性能通常会恶化。解决这个问题,近年来已经进行了大量的研究已经提出了许多新的算法。本文对带有不规则帕累托前线的拖镜进行了全面调查。我们首先介绍了基本概念,其次是与不规则问题的基准测试问题的摘要,分析不规则的原因,以及不规则的帕累托前线的现实世界优化问题。然后,给出了处理不规则问题的现有方法的分类,并通过讨论其优势和劣势来审查代表算法。最后,开放挑战被指出,提出了一些有希望的未来方向。

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