cs.AI updates on arXiv.org 07月08日 12:33
GIST: Cross-Domain Click-Through Rate Prediction via Guided Content-Behavior Distillation
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本文提出GIST模型,通过解耦源域和目标域训练过程,引入内容-行为联合训练模块,并采用非对称相似度集成策略,有效解决在线广告系统中数据稀疏和冷启动问题,实验证明其在实际应用中性能优越。

arXiv:2507.05142v1 Announce Type: new Abstract: Cross-domain Click-Through Rate prediction aims to tackle the data sparsity and the cold start problems in online advertising systems by transferring knowledge from source domains to a target domain. Most existing methods rely on overlapping users to facilitate this transfer, often focusing on joint training or pre-training with fine-tuning approach to connect the source and target domains. However, in real-world industrial settings, joint training struggles to learn optimal representations with different distributions, and pre-training with fine-tuning is not well-suited for continuously integrating new data. To address these issues, we propose GIST, a cross-domain lifelong sequence model that decouples the training processes of the source and target domains. Unlike previous methods that search lifelong sequences in the source domains using only content or behavior signals or their simple combinations, we innovatively introduce a Content-Behavior Joint Training Module (CBJT), which aligns content-behavior distributions and combines them with guided information to facilitate a more stable representation. Furthermore, we develop an Asymmetric Similarity Integration strategy (ASI) to augment knowledge transfer through similarity computation. Extensive experiments demonstrate the effectiveness of GIST, surpassing SOTA methods on offline evaluations and an online A/B test. Deployed on the Xiaohongshu (RedNote) platform, GIST effectively enhances online ads system performance at scale, serving hundreds of millions of daily active users.

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跨域点击率预测 GIST模型 数据稀疏 冷启动问题 在线广告系统
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