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Single-Stage Approximations for Optimal Policies in Serial Inventory Systems with Nonstationary Demand

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  • Kevin H. Shang

    (Fuqua School of Business, Duke University, Durham, North Carolina 27708)

Abstract

Companies often face nonstationary demand due to product life cycles and seasonality, and nonstationary demand complicates supply chain managers' inventory decisions. This paper proposes a simple heuristic for determining stocking levels in a serial inventory system. Unlike the exact optimization algorithm, the heuristic generates a near-optimal solution by solving a series of independent single-stage systems. The heuristic is constructed based on three results we derive. First, we provide a new cost decomposition scheme based on echelon systems. Next, we show that the optimal base-stock level for each echelon system is bounded by those of two revised echelon systems. Last, we prove that the revised echelon systems are essentially equivalent to single-stage systems. We examine the myopic solution for these single-stage systems. In a numerical study, we find that the change of direction of the myopic solution is consistent with that of the optimal solution when system parameters vary. We then derive an analytical expression for the myopic solution and use it to gain insights into how to manage inventory. The analytical expression shows how future demand affects the current optimal local base-stock level; it also explains an observation that the safety stock at an upstream stage is often stable and may not increase when the demand variability increases over time. Finally, we discuss how the heuristic leads to a time-consistent coordination scheme that enables a decentralized supply chain to achieve the heuristic solution.

Suggested Citation

  • Kevin H. Shang, 2012. "Single-Stage Approximations for Optimal Policies in Serial Inventory Systems with Nonstationary Demand," Manufacturing & Service Operations Management, INFORMS, vol. 14(3), pages 414-422, July.
  • Handle: RePEc:inm:ormsom:v:14:y:2012:i:3:p:414-422
    DOI: 10.1287/msom.1110.0373
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    References listed on IDEAS

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    1. Kevin H. Shang & Jing-Sheng Song, 2003. "Newsvendor Bounds and Heuristic for Optimal Policies in Serial Supply Chains," Management Science, INFORMS, vol. 49(5), pages 618-638, May.
    2. Kevin H. Shang & Jing-Sheng Song & Paul H. Zipkin, 2009. "Coordination Mechanisms in Decentralized Serial Inventory Systems with Batch Ordering," Management Science, INFORMS, vol. 55(4), pages 685-695, April.
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    2. Li Chen & Jing-Sheng Song & Yue Zhang, 2017. "Serial Inventory Systems with Markov-Modulated Demand: Derivative Bounds, Asymptotic Analysis, and Insights," Operations Research, INFORMS, vol. 65(5), pages 1231-1249, October.
    3. Sobhani, A. & Wahab, M.I.M. & Neumann, W.P., 2017. "Incorporating human factors-related performance variation in optimizing a serial system," European Journal of Operational Research, Elsevier, vol. 257(1), pages 69-83.
    4. Warsing, Donald P. & Wangwatcharakul, Worawut & King, Russell E., 2019. "Computing base-stock levels for a two-stage supply chain with uncertain supply," Omega, Elsevier, vol. 89(C), pages 92-109.
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    7. Barros, Júlio & Cortez, Paulo & Carvalho, M. Sameiro, 2021. "A systematic literature review about dimensioning safety stock under uncertainties and risks in the procurement process," Operations Research Perspectives, Elsevier, vol. 8(C).
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    9. Rostami-Tabar, Bahman & Babai, Mohamed Zied & Ducq, Yves & Syntetos, Aris, 2015. "Non-stationary demand forecasting by cross-sectional aggregation," International Journal of Production Economics, Elsevier, vol. 170(PA), pages 297-309.
    10. Kangzhou Wang & Shouchang Chen & Zhibin Jiang & Weihua Zhou & Na Geng, 2021. "Capacity Allocation of an Integrated Production and Service System," Production and Operations Management, Production and Operations Management Society, vol. 30(8), pages 2765-2781, August.
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