Technical Note—Average Cost Optimality in Partially Observable Lost-Sales Inventory Systems

IF 0.7 4区 管理学 Q3 Engineering Military Operations Research Pub Date : 2022-06-10 DOI:10.1287/opre.2022.2305
Xingyu Bai, X. Chen, A. Stolyar
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引用次数: 1

Abstract

In many real-life situations, the inventory record may not match the actual stock perfectly. This can happen due to distortion of inventory data, such as transaction errors, misplaced inventories, and spoilage. In these cases, because the decision maker only has incomplete information about the inventory levels, many well-known inventory policies are not even admissible, and our understanding of the optimal policies, even their existence, is very limited. In “Average Cost Optimality in Partially Observable Lost-Sales Inventory Systems,” Bai et al. consider the classical lost-sales inventory model, in which the inventory level is only observed when it becomes zero. They formulate the cost-minimization problem as a partially observable Markov decision process. By exploiting the vanishing discount factor approach, they provide a way to verify the existence of optimal policies under the average cost criterion. The key step in their analysis is the construction of a valid policy, which, in a certain sense, copies the actions of another policy for the process starting from another initial state.
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技术笔记-部分可观察损失销售库存系统的平均成本最优性
在许多实际情况下,库存记录可能与实际库存不完全相符。这可能是由于库存数据失真造成的,例如交易错误、放错位置的库存和损坏。在这些情况下,由于决策者对库存水平只有不完全的信息,许多众所周知的库存政策甚至是不可接受的,我们对最优政策的理解,甚至它们的存在,都是非常有限的。在“部分可观察的销售损失库存系统中的平均成本最优性”中,Bai等人考虑了经典的销售损失库存模型,其中库存水平只有在变为零时才会被观察到。他们将成本最小化问题表述为部分可观察的马尔可夫决策过程。利用贴现因子消失方法,给出了一种验证平均成本准则下最优策略存在性的方法。他们分析的关键步骤是构建一个有效的策略,从某种意义上说,该策略为从另一个初始状态开始的流程复制另一个策略的操作。
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来源期刊
Military Operations Research
Military Operations Research 管理科学-运筹学与管理科学
CiteScore
1.00
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Military Operations Research is a peer-reviewed journal of high academic quality. The Journal publishes articles that describe operations research (OR) methodologies and theories used in key military and national security applications. Of particular interest are papers that present: Case studies showing innovative OR applications Apply OR to major policy issues Introduce interesting new problems areas Highlight education issues Document the history of military and national security OR.
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