Music Classification Based On Mood Recognition

Authors

  • Patel Dhruja D Information Technology Department, Parul Institute of Engineering and Technology,Waghodia, Vadodara, India.

Keywords:

Music emotion recognition, Feature extraction, Two level classification, Music mood classification

Abstract

Music emotion is a vital component in the field of multimedia database recovery and
computational musicology. The online musical datasets are major challenges for searching, retrieving,
and organizing the music content. Therefore, there is a require for robust automatic music emotion
classifier system for organizing variety music pieces into different classes according to the specific
viable information. Basic components are to be considered for music emotion classification audio feature
o r i g i n and classifier design. In user propose diverse audio features to precisely characterize the music
substance. The feature sets belong to groups dynamic, rhythmic, spectral, and harmonic. Four statistical
parameters are considered as representatives, including the fourth-order central moments of each
feature as well as covariance part. Number of unimportant parameters is forced by minimum unemployment
maximum relevance(MRMR)algorithm and principal component analysis(PCA). Support Vector
Machine(SVM) is used as a classifiers to classify the music mood recognition.

Published

2017-03-25

How to Cite

Music Classification Based On Mood Recognition. (2017). International Journal of Advance Engineering and Research Development (IJAERD), 4(3), 166-168. https://ijaerd.org/index.php/IJAERD/article/view/1979

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