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SaviorRec: Semantic-Behavior Alignment for Cold-Start Recommendation

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In recommendation systems, predicting Click-Through Rate (CTR) is crucial for accurately matching users with items. To improve recommendation performance for cold-start and long-tail items, recent studies focus on leveraging item multimodal features to model users' interests. However, obtaining multimodal representations for items relies on complex pre-trained encoders, which incurs unacceptable computation cost to train jointly with downstream ranking models. Therefore, it is important to maintain alignment between semantic and behavior space in a lightweight way. To address these challenges, we propose a Semantic-Behavior Alignment for Cold-start Recommendation framework, which mainly focuses on utilizing multimodal representations that align with the user behavior space to predict CTR. First, we leverage domain-specific knowledge to train a multimodal encoder to generate behavior-aware semantic representations. Second, we use residual quantized semantic ID to dynamically bridge the gap between multimodal representations and the ranking model, facilitating the continuous semantic-behavior alignment. We conduct our offline and online experiments on the Taobao, one of the world's largest e-commerce platforms, and have achieved an increase of 0.83% in offline AUC, 13.21% clicks increase and 13.44% orders increase in the online A/B test, emphasizing the efficacy of our method.

Yining Yao, Ziwei Li, Shuwen Xiao, Boya Du, Jialin Zhu, Junjun Zheng, Xiangheng Kong, Yuning Jiang• 2025

Related benchmarks

TaskDatasetResultRank
CTR PredictionIndustrial Dataset
CTR AUC69.9
10
CTCVR PredictionIndustrial Dataset
CTCVR AUC0.849
10
CTCVR PredictionIndustrial Dataset New items (online < 20 days)
CTCVR AUC0.8337
8
CTCVR PredictionIndustrial Dataset Popular items (online > 300 days)
CTCVR AUC0.8488
8
CTR PredictionIndustrial Dataset New items (online < 20 days)
CTR AUC0.6853
8
CTR PredictionIndustrial Dataset Popular items (online > 300 days)
CTR AUC69.87
8
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