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Robust Pricing and Production with Information Partitioning and Adaptation

Author

Listed:
  • Georgia Perakis

    (Sloan School of Management, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

  • Melvyn Sim

    (Department of Analytics & Operations, NUS Business School, National University of Singapore, Singapore 119077)

  • Qinshen Tang

    (Division of Information Technology & Operations Management, Nanyang Business School, Nanyang Technological University, Singapore 639798)

  • Peng Xiong

    (Department of Analytics & Operations, NUS Business School, National University of Singapore, Singapore 119077)

Abstract

We introduce a new distributionally robust optimization model to address a two-period, multiitem joint pricing and production problem, which can be implemented in a data-driven setting using historical demand and side information pertinent to the prediction of demands. Starting from an additive demand model, we introduce a new partitioned-moment-based ambiguity set to characterize its residuals, which also determines how the second-period demand would evolve from the first-period information in a data-driven setting. We investigate the joint pricing and production problem by proposing a cluster-adapted markdown policy and an affine recourse adaptation, which allow us to reformulate the problem as a mixed-integer linear optimization problem that we can solve to optimality using commercial solvers. We also extend our framework to ensemble methods using a set of ambiguity sets constructed from different clustering approaches. Both the numerical experiments and case study demonstrate the benefits of the cluster-adapted markdown policy and the partitioned moment-based ambiguity set in improving the mean profit over the empirical model—when applied to most out-of-sample tests.

Suggested Citation

  • Georgia Perakis & Melvyn Sim & Qinshen Tang & Peng Xiong, 2023. "Robust Pricing and Production with Information Partitioning and Adaptation," Management Science, INFORMS, vol. 69(3), pages 1398-1419, March.
  • Handle: RePEc:inm:ormnsc:v:69:y:2023:i:3:p:1398-1419
    DOI: 10.1287/mnsc.2022.4446
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