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An improved Shuffled Frog Leaping Algorithm with a fast search strategy for optimization problems

机译:一种改进的改组蛙跳算法,具有针对优化问题的快速搜索策略

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Several evolutionary algorithms (EAs) are proposed in the literature to solve continuous optimisation problems. In this paper we present a new search startegy to improve the efficiency of the Shuffled Frog Leaping Algorithm (SFLA). The shuffled frog leaping algorithm is a population-based approach for a heuristic search in optimization problems. The algorithm consists of a set of virtual frogs partitioned into several groups called “memeplexes”. However, After some optimization runs frogs position's become closer in each memeplex. Indeed, this problem leads to a premature convergence. For getting better effiency we propose a novel search strategy by infecting not only the worst indvidual but also the best indvidual idea's. To further improve the speed of convergence of the algorithm, we have introduced two acceleration factors in the search strategy formulation. The proposed algorithm has been evaluated on five mathematical benchmark functions. Compared with a the orginal SFLA and the particle swarm optimization algorithm, the experimental results in terms of optimization performance and the speed of convergence shows that the proposed algorithm can be an effective tool for solving combinatorial optimization problems.
机译:文献中提出了几种进化算法(EA)来解决连续优化问题。在本文中,我们提出了一种新的搜索策略,以提高随机蛙跳算法(SFLA)的效率。改组的蛙跳算法是一种基于群体的方法,用于在优化问题中进行启发式搜索。该算法由一组虚拟青蛙组成,这些青蛙被分为几组,称为“ memeplexes”。但是,经过一些优化运行后,青蛙在每个中型复合体中的位置都变得越来越近。确实,这个问题导致了过早的收敛。为了获得更高的效率,我们提出了一种新颖的搜索策略,它不仅可以感染最差的个人,还可以感染最好的个人想法。为了进一步提高算法的收敛速度,我们在搜索策略制定中引入了两个加速因子。所提出的算法已在五个数学基准函数上进行了评估。与原始的SFLA算法和粒子群优化算法相比,在优化性能和收敛速度方面的实验结果表明,该算法可以作为解决组合优化问题的有效工具。

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