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Multi-modal Summarization for Video-containing Documents

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arxiv 2009.08018 v1 pith:FL5DHMTJ submitted 2020-09-17 cs.CL cs.IR

classification cs.CLcs.IR
keywords summarizationmulti-modaldocumentsexistingmodelnovelvideovideos
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Summarization of multimedia data becomes increasingly significant as it is the basis for many real-world applications, such as question answering, Web search, and so forth. Most existing multi-modal summarization works however have used visual complementary features extracted from images rather than videos, thereby losing abundant information. Hence, we propose a novel multi-modal summarization task to summarize from a document and its associated video. In this work, we also build a baseline general model with effective strategies, i.e., bi-hop attention and improved late fusion mechanisms to bridge the gap between different modalities, and a bi-stream summarization strategy to employ text and video summarization simultaneously. Comprehensive experiments show that the proposed model is beneficial for multi-modal summarization and superior to existing methods. Moreover, we collect a novel dataset and it provides a new resource for future study that results from documents and videos.

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  1. MS4UI: A Dataset for Multi-modal Summarization of User Interface Instructional Videos

    cs.CV 2025-06 conditional novelty 7.0 of 10

    MS4UI provides a new benchmark for summarizing UI instructional videos into step-by-step text and key frames, where existing models perform poorly.

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