Simulation optimization in inventory replenishment: a classification

H. Jalali, I. Nieuwenhuyse
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引用次数: 79

Abstract

Simulation optimization is increasingly popular for solving complicated and mathematically intractable business problems. Focusing on academic articles published between 1998 and 2013, the present survey aims to unveil the extent to which simulation optimization has been used to solve practical inventory problems (as opposed to small, theoretical “toy problem”), and to detect any trends that might have arisen (e.g., popular topics, effective simulation optimization methods, frequently studied inventory system structures). We find that metaheuristics (especially genetic algorithms) and methods that combine several simulation optimization techniques are the most popular. The resulting categorizations provide a useful overview for researchers studying complex inventory management problems, by providing detailed information on the inventory system characteristics and the employed simulation optimization techniques, highlighting articles that involve stochastic constraints (e.g., expected fill rate constraints) or that employ a robust simulation optimization approach. Finally, in highlighting both trends and gaps in the research field, this review suggests avenues for further research.
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库存补充中的模拟优化:一个分类
模拟优化在解决复杂和数学上难以处理的业务问题方面越来越受欢迎。本调查着眼于1998年至2013年间发表的学术文章,旨在揭示模拟优化在多大程度上被用于解决实际库存问题(而不是小的、理论上的“玩具问题”),并检测可能出现的任何趋势(例如,流行话题、有效的模拟优化方法、经常研究的库存系统结构)。我们发现元启发式(尤其是遗传算法)和结合多种模拟优化技术的方法是最受欢迎的。通过提供库存系统特征的详细信息和所采用的模拟优化技术,重点介绍了涉及随机约束(例如,预期填充率约束)或采用鲁棒模拟优化方法的文章,由此得出的分类为研究复杂库存管理问题的研究人员提供了有用的概述。最后,在强调研究领域的趋势和差距的同时,本文提出了进一步研究的途径。
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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来源期刊
IIE Transactions
IIE Transactions 工程技术-工程:工业
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审稿时长
4.5 months
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