Melody Track Selection Using Discriminative Language Model

Published: 2008, Last Modified: 05 Jun 2025IEICE Trans. Inf. Syst. 2008EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: In this letter we focus on the task of selecting the melody track from a polyphonic MIDI file. Based on the intuition that music and language are similar in many aspects, we solve the selection problem by introducing an n-gram language model to learn the melody co-occurrence patterns in a statistical manner and determine the melodic degree of a given MIDI track. Furthermore, we propose the idea of using background model and posterior probability criteria to make modeling more discriminative. In the evaluation, the achieved 81.6% correct rate indicates the feasibility of our approach.
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