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A Markov decision model to evaluate outsourcing in reverse logistics

机译:评估逆向物流外包的马尔可夫决策模型

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One of the most important decisions regarding reverse logistics (RL) is whether to outsource such functions or not, due to the fact that RL does not represent a production or distribution firm's core activity. To explore the hypothesis that outsourcing RL functions is more suitable when returns are more variable, we formulate and analyse a Markov decision model of the outsourcing decision. The reward function includes capacity and operating costs of either performing RL functions internally or outsourcing them and the transitions among states reflect both the sequence of decisions taken and a simple characterization of the random pattern of returns over time. We identify sufficient conditions on the cost parameters and the return fraction that guarantee the existence of an optimal threshold policy for outsourcing. Under mild assumptions, this threshold is more likely to be crossed, the higher the uncertainty in returns. A numerical example illustrates the existence of an optimal threshold policy even when the sufficient conditions are not satisfied and shows how the threshold for outsourcing decreases while the probability of crossing any fixed threshold increases with the return fraction.
机译:关于逆向物流(RL)的最重要决定之一是是否将此类职能外包,因为RL不代表生产或分销公司的核心活动。为了探索在收益可变的情况下外包RL功能更合适的假设,我们制定并分析了外包决策的马尔可夫决策模型。奖励功能包括内部执行RL功能或将其外包的容量和运营成本,状态之间的转换既反映了决策的顺序,又反映了随时间变化的随机回报模式。我们在成本参数和回报率上确定了充分的条件,这些条件可以保证存在最佳的外包门槛政策。在温和的假设下,回报的不确定性越高,越有可能越过这个阈值。数值示例说明了即使不满足足够的条件也存在最佳阈值策略的情况,并显示了外包阈值如何降低,而越过固定阈值的概率随回报率而增加。

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