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Improved version of a multiobjective quantum-inspired evolutionary algorithm with preference-based selection

机译:具有基于偏好的选择的多目标量子启发式进化算法的改进版本

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Multiobjective quantum-inspired evolutionary algorithm (MQEA) employs Q-bit individuals, which are updated using rotation gate by referring to nondominated solutions in an archive. In this way, a population can quickly converge to the Pareto optimal solution set. To obtain the specific solutions based on user's preference in the population, MQEA with preference-based selection (MQEA-PS) is developed. In this paper, an improved version of MQEA-PS, MQEA-PS2, is proposed, where global population is sorted and divided into groups, upper half of individuals in each group are selected by global evaluation, and selected solutions are globally migrated. The global evaluation of nondominated solutions is performed by the fuzzy integral of partial evaluation with respect to the fuzzy measures, where the partial evaluation value is obtained from a normalized objective function value. To demonstrate the effectiveness of the proposed MQEA-PS2, comparisons with MQEA and MQEA-PS are carried out for DTLZ functions.
机译:多目标量子启发式进化算法(MQEA)使用Q位个体,通过引用归档中的非支配解使用旋转门对其进行更新。这样,总体可以快速收敛到帕累托最优解集。为了获得基于用户总体偏好的特定解决方案,开发了具有基于偏好的选择的MQEA(MQEA-PS)。在本文中,提出了MQEA-PS的改进版本MQEA-PS2,其中对全球人口进行了分类并划分为组,通过全局评估选择了每个组中上半部分的个人,并且对选定的解决方案进行了全局迁移。非支配解的全局评估是通过对模糊测度的部分评估的模糊积分来执行的,其中部分评估值是从归一化的目标函数值中获得的。为了证明所提出的MQEA-PS2的有效性,对DTLZ功能进行了与MQEA和MQEA-PS的比较。

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