Distance Maintaining Compact Quantum Crossover Based Clonal Selection Algorithm

Hongwei Dai, Yu Yang, Cunhua Li
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引用次数: 9

Abstract

Premature convergence is one of the major difficulties with Clonal Selection Algorithm (CSA). It has been observed that this problem is closely tied to the problem of losing diversity in the population. In this paper, we propose a distance maintaining compact quantum crossover based CSA. The compact quantum crossover is useful for information exchanging between different solutions, whereas uses fewer antibodies. On the other hand, distance maintaining scheme permits the algorithm to fine tune its solutions. Simulation results on Traveling Salesman Problems (TSP) show that the novel algorithm is able to effectively balance exploration and exploitation of the search space and can also present the optimal or near-optimal solutions.
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基于距离保持紧凑量子交叉的克隆选择算法
早熟收敛是克隆选择算法(CSA)的主要难点之一。人们注意到,这个问题与人口丧失多样性的问题密切相关。在本文中,我们提出了一种基于距离保持的紧凑量子交叉CSA。紧凑的量子交叉对于不同溶液之间的信息交换很有用,同时使用更少的抗体。另一方面,距离保持方案允许算法对其解进行微调。对旅行商问题(TSP)的仿真结果表明,该算法能够有效地平衡搜索空间的探索和利用,并能给出最优或近最优解。
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