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A hybrid approach using chaotic dynamics and global search algorithms for combinatorial optimization problems

机译:使用混沌动力学和全局搜索算法求解组合优化问题的混合方法

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Chaotic dynamics have been effectively applied to improve various heuristic algorithms for combinatorial optimization problems in many studies. Currently, the most used chaotic optimization scheme is to drive heuristic solution search algorithms applicable to large-scale problems by chaotic neurodynamics including the tabu effect of the tabu search. Alternatively, meta-heuristic algorithms are used for combinatorial optimization by combining a neighboring solution search algorithm, such as tabu, gradient, or other search method, with a global search algorithm, such as genetic algorithms (GA), ant colony optimization (ACO), or others. In these hybrid approaches, the ACO has effectively optimized the solution of many benchmark problems in the quadratic assignment problem library. In this paper, we propose a novel hybrid method that combines the effective chaotic search algorithm that has better performance than the tabu search and global search algorithms such as ACO and GA. Our results show that the proposed chaotic hybrid algorithm has better performance than the conventional chaotic search and conventional hybrid algorithms. In addition, we show that chaotic search algorithm combined with ACO has better performance than when combined with GA.
机译:在许多研究中,混沌动力学已有效地应用于改进组合优化问题的各种启发式算法。当前,最常用的混沌优化方案是通过包括禁忌搜索的禁忌效应在内的混沌神经动力学来驱动适用于大规模问题的启发式解决方案搜索算法。可替代地,通过将​​邻近解搜索算法(例如禁忌,梯度或其他搜索方法)与全局搜索算法(例如遗传算法(GA),蚁群优化(ACO))相结合,将元启发式算法用于组合优化。或其他。在这些混合方法中,ACO有效地优化了二次分配问题库中许多基准问题的解决方案。在本文中,我们提出了一种新颖的混合方法,该方法结合了性能比禁忌搜索和全局搜索算法(例如ACO和GA)更好的有效混沌搜索算法。我们的结果表明,提出的混沌混合算法比常规的混沌搜索和传统的混合算法具有更好的性能。另外,我们证明了与ACO结合的混沌搜索算法比与GA结合的混沌搜索算法具有更好的性能。

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