An iterated local search algorithm for the traveling purchaser problem

IF 6 2区 管理学 Q1 OPERATIONS RESEARCH & MANAGEMENT SCIENCE European Journal of Operational Research Pub Date : 2025-08-01 Epub Date: 2025-02-26 DOI:10.1016/j.ejor.2025.02.024
Tomás Kapancioglu, Raquel Bernardino
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Abstract

The Traveling Purchaser Problem (TPP) is a generalization of the Traveling Salesman Problem (TSP) in which a list of items must be acquired by visiting a subset of markets. The objective is to minimize the total cost sustained along the route, including purchasing and traveling costs. Due to the NP-hard nature of the problem, solving the TPP in an exact manner is computationally challenging, implying the need for heuristic approaches to obtain quality solutions efficiently. This study proposes an algorithm based on the metaheuristic Iterated Local Search (ILS), complemented by a route configuration procedure that adjusts the subset of markets in the solution. The ILS is tested in benchmark instances, providing a performance comparison with other methods. The computational experiment for the asymmetric instances reveals the effectiveness and efficiency of the ILS, outperforming previously published results with statistical significance. Additional experiments are presented for the symmetric instances, pointing to the competitiveness and versatility of the ILS in relation to other heuristic approaches used in the literature.
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旅行购买者问题的迭代局部搜索算法
旅行购买者问题(TPP)是旅行推销员问题(TSP)的推广,TSP的问题是必须通过访问市场子集来获得一系列物品。目标是使路线上持续的总成本最小化,包括采购和旅行成本。由于问题的NP-hard性质,以精确的方式解决TPP在计算上具有挑战性,这意味着需要启发式方法来有效地获得高质量的解决方案。本研究提出了一种基于元启发式迭代局部搜索(ILS)的算法,并辅以一种调整解决方案中市场子集的路由配置程序。ILS在基准实例中进行了测试,提供了与其他方法的性能比较。对非对称实例的计算实验表明了该方法的有效性和效率,其结果优于已有的结果,具有统计学意义。针对对称实例提出了额外的实验,指出了与文献中使用的其他启发式方法相比,ILS的竞争力和多功能性。
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来源期刊
European Journal of Operational Research
European Journal of Operational Research 管理科学-运筹学与管理科学
CiteScore
11.90
自引率
9.40%
发文量
786
审稿时长
8.2 months
期刊介绍: The European Journal of Operational Research (EJOR) publishes high quality, original papers that contribute to the methodology of operational research (OR) and to the practice of decision making.
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