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An Adaptive Multi-Swarm Optimizer for Dynamic Optimization Problems

机译:动态优化问题的自适应多群优化器

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The multipopulation method has been widely used to solve dynamic optimization problems (DOPs) with the aim of maintaining multiple populations on different peaks to locate and track multiple changing optima simultaneously. However, to make this approach effective for solving DOPs, two challenging issues need to be addressed. They are how to adapt the number of populations to changes and how to adaptively maintain the population diversity in a situation where changes are complicated or hard to detect or predict. Tracking the changing global optimum in dynamic environments is difficult because we cannot know when and where changes occur and what the characteristics of changes would be. Therefore, it is necessary to take these challenging issues into account in designing such adaptive algorithms. To address the issues when multipopulation methods are applied for solving DOPs, this paper proposes an adaptive multi-swarm algorithm, where the populations are enabled to be adaptive in dynamic environments without change detection. An experimental study is conducted based on the moving peaks problem to investigate the behavior of the proposed method. The performance of the proposed algorithm is also compared with a set of algorithms that are based on multipopulation methods from different research areas in the literature of evolutionary computation.
机译:多种群方法已被广泛用于解决动态优化问题(DOP),目的是在不同的峰上保持多个种群,以同时定位和跟踪多个变化的最优值。但是,要使该方法有效地解决DOP,需要解决两个具有挑战性的问题。它们是在变化复杂或难以检测或预测的情况下,如何使种群数量适应变化,以及如何适应性地保持种群多样性。在动态环境中跟踪变化的全局最优值非常困难,因为我们无法知道何时何地发生变化以及变化的特征。因此,在设计这样的自适应算法时必须考虑这些挑战性的问题。为了解决将多种群方法应用于求解DOP时的问题,本文提出了一种自适应多群算法,该算法使种群能够在动态环境中适应变化而无需检测变化。基于移动峰问题进行了实验研究,以研究该方法的行为。还将所提出算法的性能与一组基于进化计算文献中不同研究领域的多种群方法的算法进行比较。

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