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Application of the cohort-intelligence optimization method to three selected combinatorial optimization problems

机译:同类群组智能优化方法在三个组合优化问题中的应用

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摘要

The real world problems in the supply-chain domain are generally constrained and combinatorial in nature. Several nature-/bio-/socio-inspired metaheuristic methods have been proposed so far solving such problems. An emerging metaheuristic methodology referred to as Cohort Intelligence (CI) in the socio-inspired optimization domain is applied in order to solve three selected combinatorial optimization problems. The problems considered include a new variant of the assignment problem which has applications in healthcare and inventory management, a sea-cargo mix problem and a cross-border shipper selection problem. In each case, we use two benchmarks for evaluating the effectiveness of the CI method in identifying optimal solutions. To assess the quality of solutions obtained by using CI, we do comparative testing of its performance against solutions generated by using CPLEX. Furthermore, we also compare the performance of the CI method to that of specialized multi-random-start local search optimization methods that can be used to find solutions to these problems. The results are robust with a reasonable computational time and accuracy. (C) 2015 Elsevier B.V. and Association of European Operational Research Societies (EURO) within the International Federation of Operational Research Societies (IFORS). All rights reserved.
机译:在供应链领域中,现实世界中的问题通常在本质上是受约束和组合的。迄今为止,已经提出了几种自然/生物/社会启发的元启发式方法来解决这些问题。为了解决三个选定的组合优化问题,应用了一种在社会启发式优化领域中称为“同类群体智能(CI)”的新兴元启发式方法。所考虑的问题包括分配问题的新变体,该变体问题已应用于医疗保健和库存管理,海运货物混合问题和跨境托运人选择问题。在每种情况下,我们都使用两个基准来评估CI方法识别最佳解决方案的有效性。为了评估使用CI获得的解决方案的质量,我们对其性能与使用CPLEX生成的解决方案进行了对比测试。此外,我们还将CI方法的性能与专门的多随机开始本地搜索优化方法的性能进行比较,后者可以用来找到这些问题的解决方案。结果是健壮的,具有合理的计算时间和准确性。 (C)2015年Elsevier B.V.和国际运营研究学会联合会(IFORS)中的欧洲运营研究学会协会(EURO)。版权所有。

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