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The access to ever-increasing super-computing facilities, combined with the availability of huge data repositories (although largely unannotated), has permitted the emergence of a significant trend with pure data-driven deep learning approaches. However, these methods only loosely take into account the nature and structure of the processed data. We believe that it is important to rather build hybrid deep learning methods by integrating our prior knowledge about the nature of the processed data, their generation process or if possible their perception by humans. We will illustrate the potential of such model-based deep learning approaches (or hybrid deep learning) for music analysis and synthesis.
1 décembre 2023 00:51:59
1 décembre 2023 00:43:52
1 décembre 2023 00:05:24
1 décembre 2023 01:04:50
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1, place Igor-Stravinsky
75004 Paris
+33 1 44 78 48 43
Du lundi au vendredi de 9h30 à 19h
Fermé le samedi et le dimanche
Hôtel de Ville, Rambuteau, Châtelet, Les Halles
Institut de Recherche et de Coordination Acoustique/Musique
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