Convex non-negative matrix factorization for automatic music structure identification
We propose a novel and fast approach to discover structure in western popular music by using a specific type of matrix factorization that adds a convex constrain to obtain a decomposition that can be interpreted as a set of weighted cluster centroids. We show that these centroids capture the differe...
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| Published in: | Proceedings of the ... IEEE International Conference on Acoustics, Speech and Signal Processing (1998) pp. 236 - 240 |
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| Main Authors: | , |
| Format: | Conference Proceeding |
| Language: | English |
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IEEE
01.05.2013
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| ISSN: | 1520-6149 |
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| Abstract | We propose a novel and fast approach to discover structure in western popular music by using a specific type of matrix factorization that adds a convex constrain to obtain a decomposition that can be interpreted as a set of weighted cluster centroids. We show that these centroids capture the different sections of a musical piece (e.g. verse, chorus) in a more consistent and efficient way than classic non-negative matrix factorization. This technique is capable of identifying the boundaries of the sections and then grouping them into different clusters. Additionally, we evaluate this method on two different datasets and show that it is competitive compared to other music segmentation techniques, outperforming other matrix factorization methods. |
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| AbstractList | We propose a novel and fast approach to discover structure in western popular music by using a specific type of matrix factorization that adds a convex constrain to obtain a decomposition that can be interpreted as a set of weighted cluster centroids. We show that these centroids capture the different sections of a musical piece (e.g. verse, chorus) in a more consistent and efficient way than classic non-negative matrix factorization. This technique is capable of identifying the boundaries of the sections and then grouping them into different clusters. Additionally, we evaluate this method on two different datasets and show that it is competitive compared to other music segmentation techniques, outperforming other matrix factorization methods. |
| Author | Nieto, Oriol Jehan, Tristan |
| Author_xml | – sequence: 1 givenname: Oriol surname: Nieto fullname: Nieto, Oriol email: oriol@nyu.edu organization: Music & Audio Res. Lab., New York Univ., New York, NY, USA – sequence: 2 givenname: Tristan surname: Jehan fullname: Jehan, Tristan email: tristan@echonest.com organization: Echo Nest, USA |
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| Snippet | We propose a novel and fast approach to discover structure in western popular music by using a specific type of matrix factorization that adds a convex... |
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| StartPage | 236 |
| SubjectTerms | Clustering algorithms Conferences Feature extraction Matrix decomposition matrix factorization Music information retrieval music structure analysis segmentation Sparse matrices Vectors |
| Title | Convex non-negative matrix factorization for automatic music structure identification |
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