Long-tail Hashtag Recommendation for Micro-videos with Graph Convolutional Network

被引:31
|
作者
Li, Mengmeng [1 ]
Gan, Tian [1 ]
Liu, Meng [1 ]
Cheng, Zhiyong [2 ]
Yin, Jianhua [1 ]
Nie, Liqiang [1 ]
机构
[1] Shandong Univ, Jinan, Peoples R China
[2] Qilu Univ Technol, Shandong Acad Sci, Jinan, Peoples R China
基金
中国国家自然科学基金;
关键词
Micro-videos; Hashtag Recommendation; Long-tail;
D O I
10.1145/3357384.3357912
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Hashtags, a user provides to a micro-video, are the ones which can well describe the semantics of the micro-video's content in his/her mind. At the same time, hashtags have been widely used to facilitate various micro-video retrieval scenarios (e.g., search, browse, and categorization). Despite their importance, numerous micro-videos lack hashtags or contain inaccurate or incomplete hashtags. In light of this, hashtag recommendation, which suggests a list of hashtags to a user when he/she wants to annotate a post, becomes a crucial research problem. However, little attention has been paid to micro-video hashtag recommendation, mainly due to the following three reasons: 1) lack of benchmark dataset; 2) the temporal and multi-modality characteristics of micro-videos; and 3) hashtag sparsity and long-tail distributions. In this paper, we recommend hashtags for micro-videos by presenting a novel multiview representation interactive embedding model with graph-based information propagation. It is capable of boosting the performance of micro-videos hashtag recommendation by jointly considering the sequential feature learning, the video-user-hashtag interaction, and the hashtag correlations. Extensive experiments on a constructed dataset demonstrate our proposed method outperforms state-ofthe-art baselines. As a side research contribution, we have released our dataset and codes to facilitate the research in this community.
引用
收藏
页码:509 / 518
页数:10
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