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On the Norm of Dominant Difference for Many-Objective Particle Swarm Optimization

机译:关于许多客观粒子群优化的主导差异规范

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Recent studies in multiobjective particle swarm optimization (PSO) have the tendency to employ Pareto-based technique, which has a certain effect. However, they will encounter difficulties in their scalability upon many-objective optimization problems (MaOPs) due to the poor discriminability of Pareto optimality, which will affect the selection of leaders, thereby deteriorating the effectiveness of the algorithm. This paper presents a new scheme of discriminating the solutions in objective space. Based on the properties of Pareto optimality, we propose the dominant difference of a solution, which can demonstrate its dominance in every dimension. By investigating the norm of dominant difference among the entire population, the discriminability between the candidates that are difficult to obtain in the objective space is obtained indirectly. By integrating it into PSO, we gained a novel algorithm named many-objective PSO based on the norm of dominant difference (MOPSO/DD) for dealing with MaOPs. Moreover, we design a L-p-norm-based density estimator which makes MOPSO/DD not only have good convergence and diversity but also have lower complexity. Experiments on benchmark problems demonstrate that our proposal is competitive with respect to the state-of-the-art MOPSOs and multiobjective evolutionary algorithms.
机译:最近在多目标粒子群优化(PSO)的研究具有采用帕累托的技术的趋势,这具有一定的效果。然而,由于帕累托最优性的差异差,它们会在许多客观优化问题(MAOPS)上遇到可扩展性的困难,这将影响领导者的选择,从而降低算法的有效性。本文提出了一种辨别客观空间解决方案的新方案。基于帕累托最优性的性质,我们提出了解决方案的主导差异,这可以证明其在每个维度中的优势。通过研究整个人口中的主导差异,间接获得难以在客观空间中获得的候选者之间的可怜。通过将其集成到PSO中,我们获得了一种基于用于处理MAOPS的主差异(MOPSO / DD)的规范,获得了一种名为多目标PSO的新型算法。此外,我们设计了一种基于L-P-NOM的密度估计器,其使MOPSO / DD不仅具有良好的收敛和多样性,而且具有较低的复杂性。基准问题的实验表明,我们的建议对最先进的MOPSOS和多目标进化算法具有竞争力。

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