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A region-based quantum evolutionary algorithm (RQEA) for global numerical optimization

机译:用于全局数值优化的基于区域的量子进化算法(RQEA)

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This work presents the region-based quantum evolutionary algorithm (RQEA) for solving numerical optimization problems. In the proposed algorithm, the feasible solution space is decomposed into regions in terms of quantum representation. As the search progresses from one generation to the next, the quantum bits evolve gradually, increasing the probability of selecting regions that yield good fitness values. Through the inherent probabilistic mechanism, the RQEA initially behaves as a global search algorithm and gradually evolves into a local search algorithm, resulting in a good balance between exploration and exploitation. The RQEA is applied to a series of numerical optimization problems. The experiments show that the results obtained by the RQEA are better than those obtained using state-of-the-art QEA and DEahcSPX.
机译:这项工作提出了用于解决数值优化问题的基于区域的量子进化算法(RQEA)。在提出的算法中,将可行解空间按照量子表示分解为区域。随着搜索从一代发展到下一代,量子位逐渐发展,增加了选择产生良好适应性值的区域的可能性。通过固有的概率机制,RQEA最初起着全局搜索算法的作用,并逐渐演变为局部搜索算法,从而在勘探与开发之间取得了良好的平衡。 RQEA应用于一系列数值优化问题。实验表明,通过RQEA获得的结果要优于使用最新的QEA和DEahcSPX获得的结果。

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