Authors
Yang Cong, Junsong Yuan, Jiebo Luo
Publication date
2011/9/1
Journal
IEEE Transactions on Multimedia
Volume
14
Issue
1
Pages
66-75
Publisher
IEEE
Description
The rapid growth of consumer videos requires an effective and efficient content summarization method to provide a user-friendly way to manage and browse the huge amount of video data. Compared with most previous methods that focus on sports and news videos, the summarization of personal videos is more challenging because of its unconstrained content and the lack of any pre-imposed video structures. We formulate video summarization as a novel dictionary selection problem using sparsity consistency, where a dictionary of key frames is selected such that the original video can be best reconstructed from this representative dictionary. An efficient global optimization algorithm is introduced to solve the dictionary selection model with the convergence rates as O (1/ K 2 ) (where K is the iteration counter), in contrast to traditional sub-gradient descent methods of O (1/√ K ). Our method provides a scalable …
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