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Video Summarization in a Multi-View Camera Network (1608.00310v1)

Published 1 Aug 2016 in cs.CV

Abstract: While most existing video summarization approaches aim to extract an informative summary of a single video, we propose a novel framework for summarizing multi-view videos by exploiting both intra- and inter-view content correlations in a joint embedding space. We learn the embedding by minimizing an objective function that has two terms: one due to intra-view correlations and another due to inter-view correlations across the multiple views. The solution can be obtained directly by solving one Eigen-value problem that is linear in the number of multi-view videos. We then employ a sparse representative selection approach over the learned embedding space to summarize the multi-view videos. Experimental results on several benchmark datasets demonstrate that our proposed approach clearly outperforms the state-of-the-art.

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Authors (3)
  1. Rameswar Panda (79 papers)
  2. Abir Das (20 papers)
  3. Amit K. Roy-Chowdhury (87 papers)
Citations (17)