Music Mood Detection Based On Audio And Lyrics With Deep Neural Net

September 19, 2018 Β· Declared Dead Β· πŸ› International Society for Music Information Retrieval Conference

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Authors RΓ©mi Delbouys, Romain Hennequin, Francesco Piccoli, Jimena Royo-Letelier, Manuel Moussallam arXiv ID 1809.07276 Category cs.IR: Information Retrieval Cross-listed cs.LG, cs.SD, stat.ML Citations 97 Venue International Society for Music Information Retrieval Conference Last Checked 3 months ago
Abstract
We consider the task of multimodal music mood prediction based on the audio signal and the lyrics of a track. We reproduce the implementation of traditional feature engineering based approaches and propose a new model based on deep learning. We compare the performance of both approaches on a database containing 18,000 tracks with associated valence and arousal values and show that our approach outperforms classical models on the arousal detection task, and that both approaches perform equally on the valence prediction task. We also compare the a posteriori fusion with fusion of modalities optimized simultaneously with each unimodal model, and observe a significant improvement of valence prediction. We release part of our database for comparison purposes.
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