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A Feature-Based Consideration Set Choice Model for Online Retailing

计算机科学 采购 集合(抽象数据类型) 多项式logistic回归 产品(数学) 数学优化 整数规划 整数(计算机科学) 运筹学 线性规划 选择集 决策问题 列生成 同种类的 决策模型 随机规划 罗伊特 最优化问题 消费者选择 词典序 数据包络分析 产品类别 接头(建筑物)
作者
Mohammad Amin Farzaneh,Sajad Modaresi,Ashwin Venkataraman
出处
期刊:Manufacturing & Service Operations Management [Institute for Operations Research and the Management Sciences]
卷期号:28 (3): 706-725
标识
DOI:10.1287/msom.2023.0107
摘要

Problem definition: We propose a feature-based consideration set choice model (FCM) motivated by customers’ purchasing behavior in online retail platforms. In our model, customers form a consideration set by including products with the highest utilities computed based on a subset of product features visible on the search results page. The customers then make a purchase decision from the consideration set by accounting for all features available on the product pages. The FCM incorporates heterogeneity in customer preferences across both the consideration and purchase stages, and it allows customers to re-evaluate products’ utility in the second stage. Methodology/results: We develop an efficient maximum likelihood estimation procedure for estimating the model parameters from customers’ click and purchase data. We show that the assortment optimization problem under FCM is NP-hard by drawing a connection to the assortment problem under the latent-class multinomial logit (LC-MNL) model. Moreover, we establish that the problem remains NP-hard even under a variant of our model termed the deterministic feature-based consideration set choice model (D-FCM), which imposes a deterministic structure in the consideration stage. On the positive side, the D-FCM admits a tractable mixed integer linear programming (MILP) formulation for solving the assortment problem and facilitates the study of the more complex joint assortment and pricing problem, for which we provide a polynomial-time solution (in the number of products) for both homogeneous and heterogeneous settings. Managerial implications: Through numerical experiments on real and synthetic data, we demonstrate that our proposed model outperforms the MNL and LC-MNL benchmarks on out-of-sample prediction accuracy and decision performance. Finally, we introduce a novel operational problem termed feature selection, which identifies the subset of features to display during the consideration formation stage to maximize expected revenue. We establish the NP-hardness of this problem under both model variants and propose a tractable MILP formulation for solving it. Supplemental Material: The online appendix is available at https://doi.org/10.1287/msom.2023.0107 .
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