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Change reaction strategies for DNSGA-II solving dynamic multi-objective optimization problems

机译:更改DNSGA-II解决动态多目标优化问题的反应策略

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Many real world optimization problems have multiple objectives that typically are in conflict with one another. Furthermore, at least one objective can even be dynamic. If all of these traits are present, the problem is called a dynamic multi-objective optimisation problems (DMOOPs). The non-dominated sorting genetic algorithm II (NSGA-II) is a standard or benchmark algorithm for static multi-objective optimization problems (MOOPs) that has been extended to solve DMOOPs. Once a change has been detected, an algorithm has to react appropriately, to ensure enough diversity in the population to search for new optimal solutions after the change has occurred. However, the algorithm still has to balance exploration and exploitation. Therefore, this paper investigates four change reaction strategies that introduce new diversity into the population of the dynamic non-dominated sorting genetic algorithm II (DNSGA-II) after a change in the environment has occurred. The results indicate that all strategies that only inject diversity through changing a portion of the population (and not the entire population) performed well. When the whole population was changed, the performance of DNSGA-II deteriorated.
机译:许多现实世界中的优化问题都有多个目标,这些目标通常相互冲突。此外,至少一个目标甚至可以是动态的。如果存在所有这些特征,则该问题称为动态多目标优化问题(DMOOP)。非支配排序遗传算法II(NSGA-II)是针对静态多目标优化问题(MOOP)的一种标准或基准算法,已将其扩展为求解DMOOP。一旦检测到变化,算法就必须做出适当反应,以确保变化发生后,总体中有足够的多样性来寻找新的最优解。但是,该算法仍然必须在探索和开发之间取得平衡。因此,本文研究了四种变化反应策略,这些策略在环境发生变化后将新的多样性引入动态非支配排序遗传算法II(DNSGA-II)的种群中。结果表明,仅通过改变一部分人口(而不是整个人口)来注入多样性的所有策略都表现良好。当整体人口发生变化时,DNSGA-II的性能下降。

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