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Knowledge Extraction And Representation Learning For Music Recommendation And Classification
2017
Zenodo
In this thesis, we address the problems of classifying and recommending music present in large collections. We focus on the semantic enrichment of descriptions associated to musical items (e.g., artists biographies, album reviews, metadata), and the exploitation of multimodal data (e.g., text, audio, images). To this end, we first focus on the problem of linking music-related texts with online knowledge repositories and on the automated construction of music knowledge bases. Then, we show how
doi:10.5281/zenodo.1048497
fatcat:kdh5jhvocbh3riwln6n2f756su