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Evolving Music Generation with SOM-Fitness Genetic Programming.

Authors :
Hutchison, David
Kanade, Takeo
Kittler, Josef
Kleinberg, Jon M.
Mattern, Friedemann
Mitchell, John C.
Naor, Moni
Nierstrasz, Oscar
Rangan, C. Pandu
Steffen, Bernhard
Sudan, Madhu
Terzopoulos, Demetri
Tygar, Doug
Vardi, Moshe Y.
Weikum, Gerhard
Giacobini, Mario
Phon-Amnuaisuk, Somnuk
Law, Edwin Hui Hean
Kuan, Ho Chin
Source :
Applications of Evolutionary Computing (9783540718048); 2007, p557-566, 10p
Publication Year :
2007

Abstract

Most real life applications have huge search spaces. Evolutionary Computation provides an advantage in the form of parallel explorations of many parts of the search space. In this report, Genetic Programming is the technique we used to search for good melodic fragments. It is generally accepted that knowledge is a crucial factor to guide search. Here, we show that SOM can be used to facilitate the encoding of domain knowledge into the system. The SOM was trained with music of desired quality and was used as fitness functions. In this work, we are not interested in music with complex rules but with simple music employed in computer games. We argue that this technique provides a flexible and adaptive means to capture the domain knowledge in the system. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISBNs :
9783540718048
Database :
Supplemental Index
Journal :
Applications of Evolutionary Computing (9783540718048)
Publication Type :
Book
Accession number :
33213665
Full Text :
https://doi.org/10.1007/978-3-540-71805-5_61