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On the Application of Generic Summarization Algorithms to Music (1406.4877v1)

Published 18 Jun 2014 in cs.IR, cs.LG, and cs.SD

Abstract: Several generic summarization algorithms were developed in the past and successfully applied in fields such as text and speech summarization. In this paper, we review and apply these algorithms to music. To evaluate this summarization's performance, we adopt an extrinsic approach: we compare a Fado Genre Classifier's performance using truncated contiguous clips against the summaries extracted with those algorithms on 2 different datasets. We show that Maximal Marginal Relevance (MMR), LexRank and Latent Semantic Analysis (LSA) all improve classification performance in both datasets used for testing.

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Authors (3)
  1. Francisco Raposo (7 papers)
  2. Ricardo Ribeiro (32 papers)
  3. David Martins de Matos (39 papers)
Citations (14)

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