Zero-shot Recommendation: Towards Class Semantic Relation Learning for Inferring Labels of Unseen Micro-videos
Junyang Chen, Huan Wang, Yirui Wu, Qiuzhen Lin, Yunfeng Diao, Junkai Ji
摘要
Micro-video label prediction plays a pivotal role on contemporary video-sharing platforms, such as Kwai and Tiktok. The emergence of video content lacking labels presents a formidable challenge for conventional user interest prediction methods. This paper addresses the challenge of micro-video label prediction, particularly for unseen videos, by proposing a zero-shot method called Class Semantic Relation Learning (CSRL). Unlike traditional user interest prediction models, CSRL leverages the pre-trained Large Language Model (LLM) to enhance prediction accuracy for unlabeled videos. The novelty of CSRL lies in its integration of three key components: a raw feature autoencoder, LLM-enhanced features, and a decomposed graph network. The decomposed graph network is specifically designed to disentangle the relationships between labeled and unlabeled videos, offering a significant improvement over previous methods. By fusing hidden topics with LLM-enhanced text, CSRL effectively handles sparse video features. Experiments on large-scale datasets from the Kwai platform show that CSRL achieves state-of-the-art results, with up to 44.64% improvement in Hit Ratio (HR), highlighting its superiority over existing zero-shot recommendation models in predicting user interests within the user-video network.
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它引用的顶会 Paper5
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- Zero-shot Node Classification with Decomposed Graph Prototype NetworkZheng Wang, Jialong Wang, Yuchen Guo, Zhiguo GongKDD 2021 · 被引用 41 次
- Zero-shot Micro-video Classification with Neural Variational Inference in Graph Prototype NetworkJunyang Chen, Jialong Wang, Zhijiang Dai, Huisi Wu 等ACM MM 2023 · 被引用 17 次
- Hyperbolic Visual Embedding Learning for Zero-Shot RecognitionShaoteng Liu, Jingjing Chen, Liangming Pan, Chong-Wah Ngo 等CVPR 2020
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