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Random Utility Models with Cardinality Context Effects for Online Subscription Service Platforms

机译:随机实用新型,具有基数背景对在线订阅服务平台的影响

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摘要

A more general family of random utility models is developed to model a cognitive heuristic, known as consideration sets. These new models, denoted as Multinomial Logit Cardinality Effect models (MNL-CE), define perceived representative utility of items by assigning a penalty as a function of assortment cardinality to the representative utility of each item beyond a threshold value (except for the no-choice option). This definition of perceived representative utility of an item is context-dependent and thus a function of assortment attributes (cardinality), in addition to item and user attributes. The user's net benefit is therefore a trade-off between the benefits and the costs of considering a certain number of items. A developed algorithm efficiently solves the subscription platform assortment optimization problem with equal profit when user selection is modeled via variants of the MNL-CE. The sensitivity of model parameters on the optimal assortment cardinality and no-choice probability is analyzed with the MovieLens dataset.
机译:开发了一个更一般的随机实​​用程序模型,以模拟认知启发式,称为考虑集。这些新型号表示为多项式Lo​​git基数效果模型(MNL-CE),通过将罚款作为分类基数的函数分配给阈值的各项的代表实用性来定义项目的感知代表效用(除非NO-除外)选择选项)。该项目的被感知代表实用程序的定义是上下文相关的,因此还具有分类属性(基数)的函数,除了项目和用户属性。因此,用户的净利润是在考虑一定数量的项目的福利和成本之间进行权衡。发达的算法有效地解决了订阅平台分类优化问题,当用户选择通过MNL-CE的变体建模时,具有平等的利润。用MOVIELENS数据集分析了模型参数对最佳分类基数和无选择概率的敏感性。

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