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Hybrid elitist-ant system for a symmetric traveling salesman problem: case of Jordan

机译:混合ELITIST-ANT系统,用于对称旅行推销员问题:Jordan的情况

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This work investigates the performance of a hybrid population-based meta-heuristic with an external memory structure of a hybrid elitist-ant system (elitist-AS). This memory is known as an elite pool, which contains high quality and diverse solutions to maintain a balance between diversity and quality of the search. This may guarantee the effectiveness and efficiency of the search, which could enhance the performance of the algorithm across different instances. A very well known and intensively studied NP-hard optimization problem has been selected to test the performance of the hybrid elitist-AS via its consistency, effectiveness and efficiency. This famous problem is the symmetric traveling salesman problem. The elitist-AS is a class of ant colony optimization techniques which are known to be outstanding for the traveling salesman problem where they have the ability to find the shortest tours guided by the heuristic and the pheromone trail information. An iterated local search is combined with elitist-AS to intensify the search around elite solution and maintains the solution's exploitation mechanism. Experimental results showed that the performance, compared to the best known results, is optimal for many instances. This finding indicates the effectiveness, efficiency and consistency in diversifying the search while intensifying high-quality solutions. This outstanding performance is due to the utilization of an elite pool along with diversification and intensification mechanisms. In addition, this work proposes two instances that consist of 26 Jordanian cities and 1094 Jordanian locations which have been generated based on coordinates and distances similar to the format of the selected symmetric traveling salesman problem. This step is meant to contribute to finding a solution for a real-world problem and further test the performance of the hybrid elitist-AS.
机译:这项工作调查了一种基于混合群体的元启发式的性能与混合ELITIST-ANT系统的外部存储器结构(ELITIST-AS)。此内存称为Elite池,其中包含高质量和多样化的解决方案,以维持各种分集和搜索质量之间的平衡。这可以保证搜索的有效性和效率,这可以增强不同实例的算法的性能。已经选择了一种非常众所周知的和集中研究的NP硬度优化问题,以测试混合物质储备的性能 - 通过其一致性,有效性和效率。这个着名的问题是对称旅行的推销员问题。 ELITIST-AS是一类蚁群优化技术,这些技术已知为旅行推销员问题突出,在那里他们有能力找到由启发式和信息素路径信息引导的最短巡回赛。迭代本地搜索与Elitist相结合 - 以加强精英解决方案的搜索,并保持解决方案的开发机制。实验结果表明,与最佳已知结果相比,性能对许多情况来说是最佳的。该发现表明,在加强高质量解决方案时,在各种搜索中多样化的有效性,效率和一致性。这种出色的性能是由于利用精英池以及多样化和强化机制。此外,这项工作提出了两个由26个约旦城市和1094个基于所选对称旅行推销员问题的格式生成的1094个城市和1094个约旦位置的实例。这一步骤旨在有助于寻找真实问题的解决方案,并进一步测试混合Elitist的性能。

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