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  4. Machine recognition of music emotion: A review
 
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Machine recognition of music emotion: A review

Journal
ACM Transactions on Intelligent Systems and Technology
Journal Volume
3
Journal Issue
3
Date Issued
2012
Author(s)
YI-HSUAN YANG  
HOMER H. CHEN  
DOI
10.1145/2168752.2168754
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84864517995&doi=10.1145%2f2168752.2168754&partnerID=40&md5=5a37decb0a332be69878e6cca4c500d0
http://scholars.lib.ntu.edu.tw/handle/123456789/372890
Abstract
The proliferation of MP3 players and the exploding amount of digital music content call for novel ways of music organization and retrieval to meet the ever-increasing demand for easy and effective information access. As almost every music piece is created to convey emotion, music organization and retrieval by emotion is a reasonable way of accessing music information. A good deal of effort has been made in the music information retrieval community to train a machine to automatically recognize the emotion of a music signal. A central issue of machine recognition of music emotion is the conceptualization of emotion and the associated emotion taxonomy. Different viewpoints on this issue have led to the proposal of different ways of emotion annotation, model training, and result visualization. This article provides a comprehensive review of the methods that have been proposed for music emotion recognition. Moreover, as music emotion recognition is still in its infancy, there are many open issues. We review the solutions that have been proposed to address these issues and conclude with suggestions for further research. © 2012 ACM 2157-6904/2012/05-ART40 $10.00.
Subjects
Music emotion recognition
Other Subjects
Digital music; Emotion recognition; Information access; Machine recognition; Model training; MP-3 players; Music information; Music information retrieval; Music signals; Visualization; Information retrieval
Type
journal article

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