Abstract

Classifying music to its genre is one of the most challenging tasks in Music Information Retrieval (MIR). Music genre classification has been a critical activity in recent years due to the increasing development of online and offline music tracks. To make these tracks more accessible, they need to be indexed correctly. This paper reviews the current state-of-the-art methods in music genre classification and proposes a new approach using the Deep Convolution Neural Network (DCNN) model. To extract feature vectors and classify music into their respective genres, two models were designed, implemented, and evaluated on the Mel Frequency Cepstral Coefficients (MFCCs) of the songs: a 16-layered Convolutional Neural Network (CNN) named Music Genre Convolutional Neural Network (MG-CNN) and a pre-trained Deep Neural Network (DNN) VGG16 named Music Genre VGG16 (MG-VGG16). The experimental results demonstrated that the MG-CNN model achieved an accuracy of 89.48%, while the MG-VGG16 model achieved an accuracy of 78.93%. Compared to the state-of-the-art methods, the proposed method can significantly improve and facilitate music genre classification tasks.

Keywords:
Convolutional neural network Computer science Speech recognition Artificial intelligence Deep learning Convolution (computer science) Music information retrieval Mel-frequency cepstrum Feature extraction Artificial neural network Pattern recognition (psychology) Cepstrum Natural language processing Musical Art

Metrics

3
Cited By
0.81
FWCI (Field Weighted Citation Impact)
16
Refs
0.69
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Music and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing
Music Technology and Sound Studies
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Speech and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing

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