Difference between revisions of "2005:Audio Artist Identification Results"

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(Created page with '{| border="1" |- style="background: yellow;" ! Dataset !! Size (@ 44.1 KHz) !! Number of Training Files !! Number of Testing Files |- ! Magnatune | 35.2 GB || 1158 || 642 |- ! US…')
 
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Goal: To identify artist from music audio (in PCM format).
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Dataset: Two sets of data were used: Magnatune and USPOP. The audio sampling rates used were either 44.1 KHz or 22.05 KHz (mono). More data information is in the following table.
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Revision as of 20:05, 26 July 2010

Goal: To identify artist from music audio (in PCM format).

Dataset: Two sets of data were used: Magnatune and USPOP. The audio sampling rates used were either 44.1 KHz or 22.05 KHz (mono). More data information is in the following table.


Dataset Size (@ 44.1 KHz) Number of Training Files Number of Testing Files
Magnatune 35.2 GB 1158 642
USPOP 37.3 GB 1158 653



OVERALL
Rank Participant Mean of Magnatune Raw Classification Accuracy and USPOP Raw Classification Accuracy
1 Mandel & Ellis 72.45%
2 Bergstra, Casagrande, & Eck (1) 68.57%
3 Bergstra, Casagrande, & Eck (2) 66.71%
4 Pampalk, E. 61.28%
5 West & Lamere 47.24%
6 Tzanetakis, G. 42.05%
7 Logan, B 25.95%