Online Inventory Optimization in Non-Stationary Environment
Koji Ichikawa, Kei Takemura, Tatsuya Matsuoka
摘要
This paper addresses online inventory optimization (OIO), an extension of online convex optimization. OIO is a sequential decision-making process in inventory management cycles consisting of order arrival, stock consumption, and new order placement. One key challenge in OIO is managing demand fluctuations. However, most existing algorithms still cannot sufficiently handle this because they focus on a static regret guarantee, comparing their performance to a fixed order-up-to level strategy. In non-stationary environments, such static comparator is unsuitable due to demand fluctuations. In this paper, we propose an algorithm with near-optimal dynamic regret guarantee for OIO. Our algorithm also offers an improvement of for the static regret upper bound in existing studies. Here, refers to the maximum sell-out period. Our algorithm employs a simple two-stage projection strategy, through which we prove that the OIO is connected to the smoothed online convex optimization.
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它引用的顶会 Paper5
- Dynamic Regret of Convex and Smooth FunctionsPeng Zhao, Yu-Jie Zhang, Lijun Zhang, Zhi-Hua ZhouNeurIPS 2020 · 被引用 136 次
- Revisiting Smoothed Online LearningLijun Zhang, Wei Jiang, Shiyin Lu, Tianbao YangNeurIPS 2021 · 被引用 41 次
- Smoothed Online Convex Optimization Based on Discounted-Normal-PredictorLijun Zhang, Wei Jiang, Jinfeng Yi, Tianbao YangNeurIPS 2022 · 被引用 13 次
- Online Inventory Problems: Beyond the i.i.d. Setting with Online Convex OptimizationMassil Hihat, Stéphane Gaïffas, Guillaume Garrigos, Simon BussyNeurIPS 2023 · 被引用 3 次
- A Simple yet Universal Strategy for Online Convex OptimizationLijun Zhang, Guanghui Wang, Jinfeng Yi, Tianbao YangICML 2022
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