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Summarizing video using non-negative similarity matrix factorization
2002 IEEE Workshop on Multimedia Signal Processing.
We present a novel approach to automatically extracting summary excerpts from audio and video. Our approach is to maximize the average similarity between the excerpt and the source. We first calculate a similarity matrix by comparing each pair of time samples using a quantitative similarity measure. To determine the segment with highest average similarity, we maximize the summation of the self-similarity matrix over the support of the segment. To select multiple excerpts while avoiding
doi:10.1109/mmsp.2002.1203239
dblp:conf/IEEEmsp/CooperF02
fatcat:ri3vbvoxdbh2jac4ncco5kbkum