An Evolutionary Approach to Multiple Traveling Salesman Problem for Efficient Distribution of Pharmaceutical Products

Emre Kocyigit, O. K. Sahingoz, B. Diri
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引用次数: 3

Abstract

Considerable growth of computer science has created novel solutions for variable problem fields and has increased the efficiency of available solutions. Evolutionary algorithms are quite successful in dealing with real-world problems that require optimization. In this article, we implemented a Genetic Algorithm that is well known evolutionary algorithm in order to provide an efficient solution for the Distribution of Pharmaceutical Products, which is a vital optimization problem, especially in situations such as a pandemic. The Multiple Traveling Salesman Problem approach was used to distribute pharmaceutical products as soon as possible. Moreover, we strengthened our proposal algorithm with 2-Opt Algorithm to get optimal results in earlier iterations. Different datasets from a library were applied to measure the quality of solutions and computation time. At the end of the work, we observed that our proposed algorithm generates successful solutions in an acceptable running time. This study will be extended with a new mutation concept as future work.
医药产品高效配送的多旅行商问题的演化方法
计算机科学的长足发展为各种问题领域创造了新颖的解决方案,并提高了现有解决方案的效率。进化算法在处理需要优化的现实问题时非常成功。在本文中,我们实现了一种众所周知的进化算法遗传算法,以提供一个有效的解决方案,这是一个至关重要的优化问题,特别是在流行病等情况下。采用多重旅行推销员问题的方法来实现药品的尽快配送。此外,我们用2-Opt算法对提议算法进行了强化,在早期迭代中得到最优结果。从一个库中不同的数据集被用来衡量解决方案的质量和计算时间。在工作结束时,我们观察到我们提出的算法在可接受的运行时间内生成成功的解决方案。本研究将以新的突变概念作为未来工作的延伸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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