A memetic ant colony optimization algorithm for the dynamic travelling salesman problem

被引:0
|
作者
Michalis Mavrovouniotis
Shengxiang Yang
机构
[1] University of Leicester,Department of Computer Science
[2] Brunel University,Department of Information Systems and Computing
来源
Soft Computing | 2011年 / 15卷
关键词
Memetic algorithm; Ant colony optimization; Dynamic optimization problem; Travelling salesman problem; Inver-over operator; Local search; Simple inversion; Adaptive inversion;
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中图分类号
学科分类号
摘要
Ant colony optimization (ACO) has been successfully applied for combinatorial optimization problems, e.g., the travelling salesman problem (TSP), under stationary environments. In this paper, we consider the dynamic TSP (DTSP), where cities are replaced by new ones during the execution of the algorithm. Under such environments, traditional ACO algorithms face a serious challenge: once they converge, they cannot adapt efficiently to environmental changes. To improve the performance of ACO on the DTSP, we investigate a hybridized ACO with local search (LS), called Memetic ACO (M-ACO) algorithm, which is based on the population-based ACO (P-ACO) framework and an adaptive inver-over operator, to solve the DTSP. Moreover, to address premature convergence, we introduce random immigrants to the population of M-ACO when identical ants are stored. The simulation experiments on a series of dynamic environments generated from a set of benchmark TSP instances show that LS is beneficial for ACO algorithms when applied on the DTSP, since it achieves better performance than other traditional ACO and P-ACO algorithms.
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页码:1405 / 1425
页数:20
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