Robust Optimization for Food Supply Chain Management Problems: A Critical Review and its Novelty

Athaya Zahrani Irmansyah, S. Subiyanto
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Abstract

Optimization problems in real life often have problems with data that cannot be known precisely; constraints on the data are commonly referred as errors. This kind of data is called uncertainty. This uncertainty problem can be solved using Robust Optimization (RO). RO is growing rapidly with the participation of various kinds of research, especially the supply chain (distribution of food or goods between regions). It can be seen that RO is very active in providing support and contribution in various aspects of life by providing optimal results for an objective function and dealing with existing limitations and data uncertainty. This article discusses the background of the problem and the purpose of creating an article, provides an overview of bibliometric map analysis methods and discusses literature and studies. Critical review from OR database articles for supply chain problems are used as a reference, so at the end, it can be determined what novelty is an opportunity for further research.
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食品供应链管理问题的鲁棒优化:综述及其新颖性
现实生活中的优化问题往往存在无法精确知道数据的问题;数据上的约束通常被称为错误。这种数据被称为不确定性。这种不确定性问题可以用鲁棒优化(RO)来解决。随着各种研究的参与,RO正在迅速增长,特别是供应链(地区之间的食品或货物分配)。可以看出,RO通过为目标函数提供最优结果,并处理现有的限制和数据不确定性,在生活的各个方面都非常积极地提供支持和贡献。本文论述了问题的产生背景和写作目的,概述了文献计量图分析方法,并对文献和研究进行了讨论。从OR数据库中对供应链问题的文章进行批判性评论作为参考,因此最后可以确定哪些新颖性是进一步研究的机会。
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