Melody Generation using an Interactive Evolutionary Algorithm

July 07, 2019 ยท Declared Dead ยท ๐Ÿ› Mediterranean Conference on Pattern Recognition and Artificial Intelligence

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Authors Majid Farzaneh, Rahil Mahdian Toroghi arXiv ID 1907.04258 Category cs.NE: Neural & Evolutionary Cross-listed cs.SD, eess.AS Citations 5 Venue Mediterranean Conference on Pattern Recognition and Artificial Intelligence Last Checked 4 months ago
Abstract
Music generation with the aid of computers has been recently grabbed the attention of many scientists in the area of artificial intelligence. Deep learning techniques have evolved sequence production methods for this purpose. Yet, a challenging problem is how to evaluate generated music by a machine. In this paper, a methodology has been developed based upon an interactive evolutionary optimization method, with which the scoring of the generated melodies is primarily performed by human expertise, during the training. This music quality scoring is modeled using a Bi-LSTM recurrent neural network. Moreover, the innovative generated melody through a Genetic algorithm will then be evaluated using this Bi-LSTM network. The results of this mechanism clearly show that the proposed method is able to create pleasurable melodies with desired styles and pieces. This method is also quite fast, compared to the state-of-the-art data-oriented evolutionary systems.
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