Solving the capacitated clustering problem with variable neighborhood search

被引:0
|
作者
Jack Brimberg
Nenad Mladenović
Raca Todosijević
Dragan Urošević
机构
[1] Royal Military College of Canada,
[2] Mathematical Institute SANU,undefined
来源
Annals of Operations Research | 2019年 / 272卷
关键词
Optimization; Clustering; Heuristic; Local search;
D O I
暂无
中图分类号
学科分类号
摘要
Variable neighborhood search (VNS) is a proven heuristic framework for finding good solutions to combinatorial and global optimization problems. In this paper two VNS-based heuristics are proposed for solving the capacitated clustering problem. The first follows a standard VNS approach, and the second a skewed VNS that allows moves to inferior solutions. The performance of the two heuristics is assessed on benchmark instances from the literature. We also compare their performance against a recently published iterated VNS procedure. All VNS procedures outperform the state-of-the-art, but the Skewed VNS is best overall. This would suggest that using acceptance criteria before allowing moves to inferior solutions in Skewed VNS is preferable to the random shaking approach that is used in Iterated VNS to move to new regions of the solution space.
引用
收藏
页码:289 / 321
页数:32
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