DocumentCode :
2987501
Title :
Music sparse decomposition onto a MIDI dictionary of musical words and its application to music mood classification
Author :
Gao, Boyang ; Dellandréa, Emmanuel ; Chen, Liming
Author_Institution :
LIRIS, Univ. de Lyon, Lyon, France
fYear :
2012
fDate :
27-29 June 2012
Firstpage :
1
Lastpage :
6
Abstract :
Most of the automated music analysis methods available in the literature rely on the representation of the music through a set of low-level audio features related to temporal and frequential properties. Identifying high-level concepts, such as music mood, from this "black-box" representation is particularly challenging. Therefore we present in this paper a novel music representation that allows gaining an in-depth understanding of the music structure. Its principle is to decompose sparsely the music into a basis of elementary audio elements, called musical words, which represent the notes played by various instruments generated through a MIDI synthesizer. From this representation, a music feature is also proposed to allow automatic music classification. Experiments driven on two music datasets have shown the effectiveness of this approach to represent accurately music signals and to allow efficient classification for the complex problem of music mood classification.
Keywords :
music; MIDI dictionary; MIDI synthesizer; automated music analysis; black-box representation; elementary audio elements; frequential properties; low-level audio features; music mood classification; music representation; music sparse decomposition; music structure; musical words; temporal properties; Dictionaries; Histograms; Instruments; Matching pursuit algorithms; Mood; Multiple signal classification; Music;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Content-Based Multimedia Indexing (CBMI), 2012 10th International Workshop on
Conference_Location :
Annecy
ISSN :
1949-3983
Print_ISBN :
978-1-4673-2368-0
Electronic_ISBN :
1949-3983
Type :
conf
DOI :
10.1109/CBMI.2012.6269798
Filename :
6269798
Link To Document :
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