Chord Generation from Symbolic Melody Using BLSTM Networks

December 04, 2017 ยท Declared Dead ยท ๐Ÿ› International Society for Music Information Retrieval Conference

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Authors Hyungui Lim, Seungyeon Rhyu, Kyogu Lee arXiv ID 1712.01011 Category cs.SD: Sound Cross-listed cs.LG, eess.AS Citations 70 Venue International Society for Music Information Retrieval Conference Last Checked 5 months ago
Abstract
Generating a chord progression from a monophonic melody is a challenging problem because a chord progression requires a series of layered notes played simultaneously. This paper presents a novel method of generating chord sequences from a symbolic melody using bidirectional long short-term memory (BLSTM) networks trained on a lead sheet database. To this end, a group of feature vectors composed of 12 semitones is extracted from the notes in each bar of monophonic melodies. In order to ensure that the data shares uniform key and duration characteristics, the key and the time signatures of the vectors are normalized. The BLSTM networks then learn from the data to incorporate the temporal dependencies to produce a chord progression. Both quantitative and qualitative evaluations are conducted by comparing the proposed method with the conventional HMM and DNN-HMM based approaches. Proposed model achieves 23.8% and 11.4% performance increase from the other models, respectively. User studies further confirm that the chord sequences generated by the proposed method are preferred by listeners.
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