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Open-book Video Captioning with Retrieve-Copy-Generate Network

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arxiv 2103.05284 v1 pith:2GN3JP7R submitted 2021-03-09 cs.CV cs.CL

Open-book Video Captioning with Retrieve-Copy-Generate Network

classification cs.CV cs.CL
keywords videocaptioningsentencesopen-booktaskcontentexpressionsmethods
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Due to the rapid emergence of short videos and the requirement for content understanding and creation, the video captioning task has received increasing attention in recent years. In this paper, we convert traditional video captioning task into a new paradigm, \ie, Open-book Video Captioning, which generates natural language under the prompts of video-content-relevant sentences, not limited to the video itself. To address the open-book video captioning problem, we propose a novel Retrieve-Copy-Generate network, where a pluggable video-to-text retriever is constructed to retrieve sentences as hints from the training corpus effectively, and a copy-mechanism generator is introduced to extract expressions from multi-retrieved sentences dynamically. The two modules can be trained end-to-end or separately, which is flexible and extensible. Our framework coordinates the conventional retrieval-based methods with orthodox encoder-decoder methods, which can not only draw on the diverse expressions in the retrieved sentences but also generate natural and accurate content of the video. Extensive experiments on several benchmark datasets show that our proposed approach surpasses the state-of-the-art performance, indicating the effectiveness and promising of the proposed paradigm in the task of video captioning.

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