Hybrid Advertising in the Sponsored Search
Zhen Zhang, Weian Li, Yuhan Wang, Qi Qi, Kun Huang
摘要
Online advertisements are a primary revenue source for e-commerce platforms. Traditional advertising models are store-centric, selecting winning stores through auction mechanisms. Recently, a new approach known as joint advertising has emerged, which presents sponsored bundles combining one store and one brand in ad slots. Unlike traditional models, joint advertising allows platforms to collect payments from both brands and stores. However, each of these two advertising models appeals to distinct user groups, leading to low click-through rates when users encounter an undesirable advertising model. To address this limitation and enhance generality, we propose a novel advertising model called ''Hybrid Advertising''. In this model, each ad slot can be allocated to either an independent store or a bundle. To find the optimal auction mechanisms in hybrid advertising, while ensuring nearly dominant strategy incentive compatibility and individual rationality, we introduce the Hybrid Regret Network (HRegNet), a neural network architecture designed for this purpose. Extensive experiments on both synthetic and real-world data demonstrate that the mechanisms generated by HRegNet significantly improve platform revenue compared to established baseline methods.
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它引用的顶会 Paper5
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- Optimal-er Auctions through AttentionDmitry Ivanov, Iskander Safiulin, Igor Filippov, Ksenia BalabaevaNeurIPS 2022 · 被引用 57 次
- A Context-Integrated Transformer-Based Neural Network for Auction DesignZhijian Duan, Jingwu Tang, Yutong Yin, Zhe Feng 等ICML 2022 · 被引用 46 次
- PreferenceNet: Encoding Human Preferences in Auction Design with Deep LearningNeehar Peri, Michael J. Curry, Samuel Dooley, John DickersonNeurIPS 2021 · 被引用 46 次
- Joint Auction in the Online Advertising MarketZhen Zhang, Weian Li, Yahui Lei, Bingzhe Wang 等KDD 2024 · 被引用 5 次
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