Quality Disclosures and Disappointment: Evidence from the Academy Nominations

质量(理念) 匹配(统计) 提名 主流 集合(抽象数据类型) 选择(遗传算法) 心理学 作文(语言) 计算机科学 基础(拓扑) 广告 营销 认证 业务 用户生成的内容 用户体验设计 意外后果 数据质量 数据集 经济租金 公共关系 消费者行为 分辨率(逻辑)
作者
Michelangelo Rossi,Felix Schleef
出处
期刊:Management Science [Institute for Operations Research and the Management Sciences]
标识
DOI:10.1287/mnsc.2024.09016
摘要

This study examines the unintended consequences of quality disclosures, focusing on how Academy Award nominations impact consumer satisfaction in the movie industry. Awards and certifications typically signal high quality and increase consumer expectations. Yet, if the experience falls short of the expectation, they may also lead to disappointment. Using a novel data set from MovieLens, we analyze user ratings for movies surrounding Academy Award nominations from 1995 to 2019. We first implement a difference-in-differences strategy comparing nominated and non-nominated films and then introduce a novel recommendation-based matching approach that leverages vector representations of user preferences trained prior to the nominations. Our analysis removes taste-based selection and isolates changes in user experience: users who rate a movie after its nomination assign significantly lower ratings than similar users who rated the same film earlier. This effect accounts for more than 7% of the prenomination rating gap between nominated and non-nominated films and is most pronounced among less experienced users. Our findings are validated with data from IMDb, where the effect is even more pronounced, likely reflecting differences in the composition of the user base across platforms. Additional textual analysis of user-generated content on both platforms provides further evidence that the postnomination decline in ratings is driven by disappointment, rather than disinterest, deteriorating viewing conditions, or snob effects associated with mainstream popularity. This paper was accepted by Duncan Simester, marketing. Supplemental Material: The online appendix and data files are available at https://doi.org/10.1287/mnsc.2024.09016 .
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