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Distributed Multi-objective GA for Generating Comprehensive Pareto Front in Deceptive Optimization Problems

机译:分布式多目标GA用于在欺骗优化问题中产生综合帕累托前线

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This paper discusses a structure of multi-objective optimization problems, which cause deception for conventional Multi-Objective Genetic Algorithms (MOGAs). Further, we propose a Distributed Multi-Objective Genetic Algorithm (DMOGA), which employs a multiple subpopulation implementation and a replacement scheme based on the information theoretic entropy, to improve the performance of MOGA in such deceptive problems. Several studies have reported that the conventional MOGAs’ have difficulties in generating marginal segments of the Pareto front in a combinatorial optimization problems, though structural causes of their behaviors have not yet been thoroughly studied. Our analysis of the conventional MOGAs’ behaviors in two test deceptive problems suggests that the use of the local density in the selection causes an implicit bias which results in a premature convergence. DMOGA is a distributed implementation of MOGA, which emphasizes the diversity of the subpopulations by the entropy of the objective functions. This approach alleviates the premature convergence and enables MOGA to effectively generate Pareto fronts for complex objective functions. In a set of simulated experiments, the proposed method generated more comprehensive Pareto fronts than the conventional MOGAs, i. e., NSGA-II and SPEA2 in the deceptive test functions, and also achieved comparable performance in the standard multi-objective benchmarks.
机译:本文讨论了多目标优化问题的结构,这导致传统多目标遗传算法(MOGAS)的欺骗。此外,我们提出了一种分布式的多目标遗传算法(DMoGA),其采用多个亚父沉积实现和基于信息理论熵的替换方案,以提高MOGA在这种欺骗性问题中的性能。若干研究报道,传统的MOGAS在组合优化问题中产生帕累托前面的边缘区段的困难,尽管其行为的结构性原因尚未彻底研究。我们对两次测试欺骗性问题的传统摩日的行为的分析表明,在选择中使用局部密度会导致隐含的偏置,从而导致过早的收敛。 Dmoga是Moga的分布式实施,其通过目标职能的熵强调群体的多样性。这种方法减轻了过早收敛性,使MOGA能够有效地生成帕累托前线以获得复杂的客观功能。在一组模拟实验中,所提出的方法产生比传统摩伽群更全面的帕累托前线,我。即,NSGA-II和SPEA2在欺骗性测试功能中,并且还在标准的多目标基准中实现了可比性。

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