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Solving multi-objective optimization problems using self-adaptive harmony search algorithms

机译:使用自适应和声搜索算法解决多目标优化问题

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摘要

In recent years, there have been many multi-objective evolutionary algorithms proposed to solve multi-objective optimization problems. These evolutionary algorithms generate many solutions for iterations and move to the true Pareto optimal region gradually. As expected, since the harmony search algorithm can also iterate over a large number of solutions (in HM memory) and moves to the true Pareto optimal region, we use it to solve multi-objective optimization problems. In this paper, the proposed system architecture can be divided into two phases. In the first phase, we aim to search feasible solution regions as widely as possible in the entire process. In the second phase, we focus on searching optimized solutions stepwise in the feasible solution regions. Since the proposed algorithm uses many parameters, we adjust some of them in a self-adaptive way and call the algorithm self-adaptive. In the experiments, we use the eleven well-known multi-objective problems and three many-objective problems to examine the proposed algorithm and other existing algorithms, based on five performance indicators. As a result, our algorithm achieves better performances than the others in inverted generational distance, hypervolume, and spread indicators.
机译:近年来,已经有许多多目标进化算法求解多目标优化问题。这些进化算法为迭代产生了许多解决方案,并逐渐移动到真正的帕累托最佳区域。正如预期的那样,由于和声搜索算法也可以迭代大量解决方案(在HM内存中)并移动到真正的Paroto最佳区域,我们使用它来解决多目标优化问题。在本文中,所提出的系统架构可以分为两个阶段。在第一阶段,我们的目标是在整个过程中尽可能广泛地搜索可行的解决方案区域。在第二阶段,我们专注于在可行的解决方案区域逐步搜索优化解决方案。由于所提出的算法使用许多参数,我们以自适应方式调整其中一些并调用算法自适应。在实验中,我们使用11个众所周知的多目标问题和三个许多客观问题来检查所提出的算法和其他现有算法,基于五个性能指标。因此,我们的算法比倒工,超凡智能和传播指示器中的其他算法更好地实现了比其他人的表现更好。

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