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The balance between proximity and diversity in multiobjective evolutionary algorithms

机译:多目标进化算法中接近度与多样性之间的平衡

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Over the last decade, a variety of evolutionary algorithms (EAs) have been proposed for solving multiobjective optimization problems. Especially more recent multiobjective evolutionary algorithms (MOEAs) have been shown to be efficient and superior to earlier approaches. An important question however is whether we can expect such improvements to converge onto a specific efficient MOEA that behaves best on a large variety of problems. In this paper, we argue that the development of new MOEAs cannot converge onto a single new most efficient MOEA because the performance of MOEAs shows characteristics of multiobjective problems. While we point out the most important aspects for designing competent MOEAs in this paper, we also indicate the inherent multiobjective tradeoff in multiobjective optimization between proximity and diversity preservation. We discuss the impact of this tradeoff on the concepts and design of exploration and exploitation operators. We also present a general framework for competent MOEAs and show how current state-of-the-art MOEAs can be obtained by making choices within this framework. Furthermore, we show an example of how we can separate nondomination selection pressure from diversity preservation selection pressure and discuss the impact of changing the ratio between these components.
机译:在过去的十年中,已经提出了多种用于解决多目标优化问题的进化算法(EA)。特别是最近的多目标进化算法(MOEA)已被证明是有效的,并且优于早期方法。但是,一个重要的问题是,我们是否可以期望这种改进收敛到特定的高效MOEA上,而该MOEA在各种问题上表现最佳。在本文中,我们认为,由于MOEA的性能表现出多目标问题的特征,因此新的MOEA的开发不能收敛到单个最高效的MOEA上。虽然我们在本文中指出了设计胜任的MOEA的最重要方面,但同时也指出了邻近性和多样性保留之间多目标优化中固有的多目标权衡。我们讨论了这种权衡对勘探和开发运营商的概念和设计的影响。我们还为胜任的MOEA提供了一个通用框架,并展示了如何通过在此框架内进行选择来获得最新的MOEA。此外,我们将展示一个示例,说明如何将非支配选择压力与多样性保留选择压力区分开,并讨论了更改这些组件之间的比率的影响。

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