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arxiv: 1609.01819 · v1 · pith:2IGCC3A4new · submitted 2016-09-07 · 💻 cs.LG · cs.CV

Semantic Video Trailers

classification 💻 cs.LG cs.CV
keywords videoapproachtrailersattractivecapturescreatingrelevanttask
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Query-based video summarization is the task of creating a brief visual trailer, which captures the parts of the video (or a collection of videos) that are most relevant to the user-issued query. In this paper, we propose an unsupervised label propagation approach for this task. Our approach effectively captures the multimodal semantics of queries and videos using state-of-the-art deep neural networks and creates a summary that is both semantically coherent and visually attractive. We describe the theoretical framework of our graph-based approach and empirically evaluate its effectiveness in creating relevant and attractive trailers. Finally, we showcase example video trailers generated by our system.

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