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Empirical Investigations of Reference Point Based Methods When Facing a Massively Large Number of Objectives: First Results

机译:面对大量目标时基于参考点方法的实证研究:第一个结果

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Multi-objective optimization with more than three objectives has become one of the most active topics in evolutionary multi-objective optimization (EMO). However, most existing studies limit their experiments up to 15 or 20 objectives, although they claimed to be capable of handling as many objectives as possible. To broaden the insights in the behavior of EMO methods when facing a massively large number of objectives, this paper presents some preliminary empirical investigations on several established scalable benchmark problems with 25, 50, 75 and 100 objectives. In particular, this paper focuses on the behavior of the currently pervasive reference point based EMO methods, although other methods can also be used. The experimental results demonstrate that the reference point based EMO method can be viable for problems with a massively large number of objectives, given an appropriate choice of the distance measure. In addition, sufficient population diversity should be given on each weight vector or a local niche, in order to provide enough selection pressure. To the best of our knowledge, this is the first time an EMO methodology has been considered to solve a massively large number of conflicting objectives.
机译:具有三个以上目标的多目标优化已成为进化多目标优化(EMO)中最活跃的主题之一。但是,大多数现有研究将实验限制在15个或20个目标之内,尽管它们声称能够处理尽可能多的目标。为了拓宽面对大量目标时EMO方法行为的见解,本文针对一些已建立的,具有25、50、75和100个目标的可扩展基准问题提供了一些初步的实证研究。特别是,尽管其他方法也可以使用,但本文着重介绍了当前基于普遍参考点的EMO方法的行为。实验结果表明,该参考点基于EMO方法可以是可行的用于与大量大量的目标问题,给定距离量度的一个合适的选择。此外,应在每个权重向量或局部利基上赋予足够的种群多样性,以提供足够的选择压力。据我们所知,这是第一次考虑使用EMO方法来解决大量相互矛盾的目标。

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