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Use of Two Reference Points in Hypervolume- Based Evolutionary Multiobjective Optimization Algorithms

机译:在基于超体积的进化多目标优化算法中两个参考点的使用

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Recently it was reported that the location of a reference point has a dominant effect on the optimal distribution of solutions for hypervolume maximization when multiobjective problems have inverted triangular Pareto fronts. This implies that the use of an appropriate reference point is indispensable when hypervolume-based EMO (evolutionary multiobjective optimization) algorithms are applied to such a problem. However, its appropriate reference point specification is difficult since it depends on various factors such as the shape of the Pareto front (e.g., triangular, inverted triangular), its curvature property (e.g., linear, convex, concave), the population size, and the number of objectives. To avoid this difficulty, we propose an idea of using two reference points: one is the nadir point, and the other is a point far away from the Pareto front. In this paper, first we demonstrate that the effect of the reference point is strongly problem-dependent. Next we propose an idea of using two reference points and its simple implementation. Then we examine the effectiveness of the proposed idea by comparing two hypervolume-based EMO algorithms: one with a single reference point and the other with two reference points.
机译:最近有报道说,当多目标问题具有倒三角形的Pareto前沿时,参考点的位置对超体积最大化解的最佳分布具有主要影响。这意味着当将基于超容量的EMO(进化多目标优化)算法应用于此类问题时,使用适当的参考点是必不可少的。但是,由于其取决于各种因素,例如帕累托峰的形状(例如,三角形,倒三角形),曲率特性(例如,线性,凸形,凹形),总体大小和目标数量。为了避免这种困难,我们提出了使用两个参考点的想法:一个是最低点,另一个是远离帕累托前沿的点。在本文中,我们首先证明参考点的影响与问题密切相关。接下来,我们提出使用两个参考点的想法及其简单实现。然后,我们通过比较两种基于超量的EMO算法来检验所提出的想法的有效性:一种具有单个参考点,另一种具有两个参考点。

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