Utilization of genetic algorithm in classifying Filipino and Korean music through distinct windowing and perceptual features

College

Gokongwei College of Engineering

Department/Unit

Electronics And Communications Engg

Document Type

Conference Proceeding

Source Title

Proceedings of the 4th International Conference on Contemporary Computing and Informatics, IC3I 2019

First Page

121

Last Page

126

Publication Date

12-1-2019

Abstract

Classification of songs or music in terms of genre, era and any other categories has been sought to be one of the most common yet significant research fields in digital signal processing. Usually, the aim to distinguish musical patterns is only limited to one general type (e.g., American Music). The objective of this study is to perceive the differences and similarities between two general categories namely: OPM (Original Pilipino Music), the apparent representative music of the Philippines and one of the fastest growing music industries K-POP, a general term for contemporary Korean Music. Through the features acquired from jAudio and aid of a genetic algorithm model constructed in Python with the accompaniment of the TPOT library, this research is successful in classifying the music under various settings and desired outputs. © 2019 IEEE.

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Digitial Object Identifier (DOI)

10.1109/IC3I46837.2019.9055676

Disciplines

Computer Sciences

Keywords

Genetic algorithms; Machine learning; Music

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