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Multi-layer multi-view topic model for classifying advertising video

delete2017-08-01
delete33
PRE
AI
S
Sujuan Hou
L
Ling Chen
D
Dacheng Tao
S
Shangbo Zhou
柳
柳文杰 (Wenjie Liu)
郑
郑元杰 (Yuanjie Zheng) *
DOI:10.1016/j.patcog.2017.03.003delete
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摘要

摘要

En 中文
The recent proliferation of advertising (ad) videos has driven the research in multiple applications, ranging from video analysis to video indexing and retrieval. Among them, classifying ad video is a key task because it allows automatic organization of videos according to categories or genres, and this further enables ad video indexing and retrieval. However, classifying ad video is challenging compared to other types of video classification because of its unconstrained content. While many studies focus on embedding ads relevant to videos, to our knowledge, few focus on ad video classification. In order to classify ad video, this paper proposes a novel ad video representation that aims to sufficiently capture the latent semantics of video content from multiple views in an unsupervised manner. In particular, we represent ad videos from four views, including bag-of-feature (BOF), vector of locally aggregated descriptors (VLAD), fisher vector (FV) and object bank (OB). We then devise a multi-layer multi-view topic model, mlmv_LDA, which models the topics of videos from different views. A topical representation for video, supporting category-related task, is finally achieved by the proposed method. Our empirical classification results on 10,111 real-world ad videos demonstrate that the proposed approach effectively differentiate ad videos. (C) 2017 Elsevier Ltd. All rights reserved.
Keyword:
Video representation
Ad video classification
Multi-layer
Multi-view
Topic model
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Pattern Recognition 封面图
Pattern Recognition
IF:
7.6
论文数:
1.3W
被引数:
4.5W

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C
Chongqing University
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5.1W
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被引数: 6.0W
U
university of technology sydney
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被引数: 25
S
shandong normal university
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