A Similarity Measure for AutomaticAudio Classi

نویسنده

  • Jonathan Foote
چکیده

This paper presents recent results using statistics generated by a MMI-supervised vector quantizer as a measure of audio similarity. Such a measure has proved successful for talker identiication, and the extension from speech to general audio, such as music, is straightforward. A classiier that distinguishes speech from music and non-vocal sounds is presented, as well as experimental results showing how perfect classii-cation accuracy may be achieved on a small corpus using substantially less than two seconds per test audio le. The techniques a presented here may be extended to other applications and domains, such as audio retrieval-by-similarity, musical genre classiication, and automatic segmentation of continuous audio.

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تاریخ انتشار 1997