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What Weights Work for You? Adapting Weights for Any Pareto Front Shape in Decomposition-Based Evolutionary Multiobjective Optimisation

机译:什么重量为你工作?在分解的进化多目标优化中适应任何帕累托前形状的重量

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摘要

The quality of solution sets generated by decomposition-based evolutionary multi-objective optimisation (EMO) algorithms depends heavily on the consistency between a given problem's Pareto front shape and the specified weights' distribution. A set of weights distributed uniformly in a simplex often leads to a set of well-distributed solutions on a Pareto front with a simplex-like shape, but may fail on other Pareto front shapes. It is an open problem on how to specify a set of appropriate weights without the information of the problem's Pareto front beforehand. In this article, we propose an approach to adapt weights during the evolutionary process (called AdaW). AdaW progressively seeks a suitable distribution of weights for the given problem by elaborating several key parts in weight adaptation-weight generation, weight addition, weight deletion, and weight update frequency. Experimental results have shown the effectiveness of the proposed approach. AdaW works well for Pareto fronts with very different shapes: 1) the simplex-like, 2) the inverted simplex-like, 3) the highly nonlinear, 4) the disconnect, 5) the degenerate, 6) the scaled, and 7) the high-dimensional.
机译:由分解的进化多目标优化(EMO)算法产生的解决方案集的质量大量取决于给定的问题的Pareto前部形状和指定权重分布之间的一致性。一组均匀分布在Simplex中的重量通常会导致帕累托前面的一组良好的分布式解决方案,单纯形状,但在其他帕累托前形状上可能会失败。对于如何在没有事先问题的Paroto前部的信息,如何指定一组适当权重的突出问题。在本文中,我们提出了一种在进化过程中适应权重的方法(称为Adaw)。 Adaw通过在重量适应 - 重量产生,重量加法,重量删除和权重更新频率中阐述了几个关键部件,逐渐寻求给定问题的权重的合适分布。实验结果表明了提出的方法的有效性。 adaw适用于帕累托前面的形状非常不同:1)单纯形,2)倒的单纯表示,3)高度非线性,4)断开,5)脱落,6)缩放,7)高维。

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