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2009
Conference Paper
Title

Audio clips content comparison using latent semantic indexing

Abstract
This paper describes experiments for audio clips comparison based on spoken context. The spoken content is obtained using automatic speech recognition. The social tags that are available for most of the audio clips are used as keywords. These keywords are mapped to the spoken transcription representing the audio clips on the base of the social tags-keywords. The clips are described using the term frequency-inverse document frequency weighting. This description statistically evaluates how important are the keywords for the documents. The Latent Semantic Indexing (LSI) is applied on audio clips-feature vectors matrix mapping the clips content into low dimensional latent semantic space. The clips are compared using document-document comparison measure based in LSI. The similarity based on LSI is compared with the results obtained by using the standard vector space model.
Author(s)
Biatov, Konstantin  
Köhler, Joachim  
Schneider, Daniel  
Mainwork
ICSC 2009, Third IEEE International Conference on Semantic Computing  
Conference
International Conference on Semantic Computing (ICSC) 2009  
DOI
10.1109/ICSC.2009.21
Language
English
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Keyword(s)
  • semantic analysis

  • Latent Semantic Indexing

  • social tags

  • Singular Value Decomposition

  • large vocabulary continuous speech recognition

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