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Deep Learning for Video Classification and Captioning

2016-09-22
Zuxuan Wu, Ting Yao, Yanwei Fu, Yu-Gang Jiang

Abstract

Accelerated by the tremendous increase in Internet bandwidth and storage space, video data has been generated, published and spread explosively, becoming an indispensable part of today’s big data. In this paper, we focus on reviewing two lines of research aiming to stimulate the comprehension of videos with deep learning: video classification and video captioning. While video classification concentrates on automatically labeling video clips based on their semantic contents like human actions or complex events, video captioning attempts to generate a complete and natural sentence, enriching the single label as in video classification, to capture the most informative dynamics in videos. In addition, we also provide a review of popular benchmarks and competitions, which are critical for evaluating the technical progress of this vibrant field.

Abstract (translated by Google)

随着互联网带宽和存储空间的巨大增长,视频数据已经生成,发布和传播,成为当今大数据不可缺少的一部分。在本文中,我们重点回顾两个研究的目的是为了刺激视频深度学习的理解:视频分类和视频字幕。虽然视频分类专注于根据人类行为或复杂事件等语义内容自动标注视频片段,但视频字幕会尝试生成完整且自然的句子,丰富视频分类中的单个标签,以捕捉视频中最丰富的动态信息。此外,我们还提供了对评估这个充满活力的领域的技术进步至关重要的常用基准和比赛的评论。

URL

https://arxiv.org/abs/1609.06782

PDF

https://arxiv.org/pdf/1609.06782


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