Optimizing pricing and inventory strategies for dietary supplement production under stochastic demand

Yaping Zhao, Hao Luo, Qingyue Chen, Xiaoyun Xu
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Abstract

PurposeThe increasing popularity of ERP solutions has provided dietary supplement manufacturing companies with modules to manage pricing and inventory. However, the decisions made by these modules are often independent and rely on deterministic forecasts. This paper studies a multi-product dietary supplement manufacturing system under stochastic demands. The purpose is to maximize the long-run expected profit by jointly considering pricing and inventory strategies.Design/methodology/approachThe authors investigate both the general cases and three special cases including stable demand, negligible backlog and instantaneous replenishment. A two-stage algorithm named PAS is proposed. In the strategy construction stage, the constructed objective bounds are combined to provide estimates which then help to derive the optimal product prices. In the system operation stage, replenishment decisions are further made based on the prices generated from the previous stage.FindingsIt is proved that base-stock policy is optimal for the studied system, and the optimal based-stock level is provided. The global optimal strategies are obtained for three important special cases. For the general case, theoretical objective bounds are established. These bounds provide quick and reliable performance estimates for practical applications.Originality/valueVery few studies have jointly considered pricing and inventory strategies with uncertainty demands in the dietary supplement industry. The PAS algorithm developed integrates these decisions and consistently generates high-quality solutions even under highly varying demands. Such algorithm could be a valuable add-on to the pricing and inventory management modules in ERP systems.
随机需求下膳食补充剂生产定价与库存策略优化
ERP解决方案的日益普及为膳食补充剂制造公司提供了管理定价和库存的模块。然而,这些模块做出的决策往往是独立的,依赖于确定性预测。研究了随机需求下的多产品膳食补充剂生产系统。其目的是通过共同考虑定价和库存策略,使长期预期利润最大化。作者研究了一般情况和三种特殊情况,包括稳定的需求、可忽略的积压和即时补货。提出了一种名为PAS的两阶段算法。在策略构建阶段,将构建的目标边界结合起来提供估计,从而帮助推导出最优产品价格。在系统运行阶段,根据前一阶段产生的价格进一步做出补货决策。结果表明,基础库存策略对于所研究的系统是最优的,并给出了最优基础库存水平。得到了三种重要的特殊情况下的全局最优策略。对于一般情况,建立了理论客观界限。这些边界为实际应用提供了快速可靠的性能估计。独创性/价值在膳食补充剂行业中,很少有研究联合考虑不确定需求的定价和库存策略。开发的PAS算法集成了这些决策,即使在高度变化的需求下也能始终如一地生成高质量的解决方案。该算法可以作为ERP系统中定价和库存管理模块的一个有价值的附加组件。
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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