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A Novel Ranking Method Based on Subjective Probability Theory for Evolutionary Multiobjective Optimization

机译:一种基于主观概率理论的进化多目标优化的新型排名方法

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摘要

Most of the engineering problems are modeled as evolutionary multiobjective optimization problems, but they always ask for only one best solution, not a set of Pareto optimal solutions. The decision maker's subjective information plays an important role in choosing the best solution from several Pareto optimal solutions. Generally, the decision-making processing is implemented after Pareto optimality. In this paper, we attempted to incorporate the decider's subjective sense with Pareto optimality for chromosomes ranking. A new ranking method based on subjective probability theory was thus proposed in order to explore and comprehend the true nature of the chromosomes on the Pareto optimal front. The properties of the ranking rule were proven, and its transitivity was presented as well. Simulation results compared the performance of the proposed ranking approach with the Pareto-based ranking method for two multiobjective optimization cases, which demonstrated the effectiveness of the new ranking approach.
机译:大多数工程问题都被建模为进化的多目标优化问题,但它们总是只要求一个最佳解决方案,而不是一套Pareto最佳解决方案。决策者的主观信息在选择来自几个Pareto最佳解决方案的最佳解决方案方面发挥着重要作用。通常,决策处理在Pareto最优性之后实现。在本文中,我们试图用帕累托最优的染色体排名纳入德国主观意义。因此提出了一种基于主观概率理论的新的排名方法,以便探索和理解帕累托最佳前线上染色体的真实性质。验证了排名规则的性质,也提出了其传递。仿真结果与两个多目标优化案例的基于帕累托的排名方法相比,拟议的排名方法对两个多目标优化案例进行了比较,这表明了新的排名方法的有效性。

著录项

  • 作者

    Shuang Wei; Henry Leung;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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