Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning
Resumen:
Events in music frequently exhibit small-scale temporal deviations (microtiming), with respect to the underlying regular metrical grid. In some cases, as in music from the Afro-Latin American tradition, such deviations appear systematically, disclosing their structural importance in rhythmic and stylistic configuration. In this work we explore the idea of automatically and jointly tracking beats and microtiming in timekeeper instruments of Afro-Latin American music, in particular Brazilian samba and Uruguayan candombe. To that end, we propose a language model based on conditional random fields that integrates beat and onset likelihoods as observations. We derive those activations using deep neural networks and evaluate its performance on manually annotated data using a scheme adapted to this task. We assess our approach in controlled conditions suitable for these timekeeper instruments, and study the microtiming profiles’ dependency on genre and performer, illustrating promising aspects of this technique towards a more comprehensive understanding of these music traditions.
2019 | |
Inglés | |
Universidad de la República | |
COLIBRI | |
https://hdl.handle.net/20.500.12008/21752 | |
Acceso abierto | |
Licencia Creative Common Atribución (CC-BY) |
_version_ | 1807522895528722432 |
---|---|
author | Fuentes, Magdalena |
author2 | Maia, Lucas S. Rocamora, Martín Biscainho, Luiz W. P. Crayencour, Hélène C. Essid, Slim Bello, Juan P. |
author2_role | author author author author author author |
author_facet | Fuentes, Magdalena Maia, Lucas S. Rocamora, Martín Biscainho, Luiz W. P. Crayencour, Hélène C. Essid, Slim Bello, Juan P. |
author_role | author |
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collection | COLIBRI |
dc.contributor.filiacion.none.fl_str_mv | Fuentes Magdalena, L2S, CNRS–Université Paris-Sud–CentraleSupélec (France) Maia Lucas S., Universidade Federal do Rio de Janeiro (Brasil) Rocamora Martín, Universidad de la República (Uruguay). Facultad de Ingeniería Biscainho Luiz W. P., Universidade Federal do Rio de Janeiro (Brasil) Crayencour Hélène C., L2S, CNRS–Université Paris-Sud–CentraleSupélec (France) Essid Slim, LTCI, Télécom Paris, Institut Polytechnique de Paris (France) Bello Juan P., New York University (USA). Music and Audio Research Laboratory |
dc.creator.none.fl_str_mv | Fuentes, Magdalena Maia, Lucas S. Rocamora, Martín Biscainho, Luiz W. P. Crayencour, Hélène C. Essid, Slim Bello, Juan P. |
dc.date.accessioned.none.fl_str_mv | 2019-09-06T21:40:43Z |
dc.date.available.none.fl_str_mv | 2019-09-06T21:40:43Z |
dc.date.issued.none.fl_str_mv | 2019 |
dc.description.abstract.none.fl_txt_mv | Events in music frequently exhibit small-scale temporal deviations (microtiming), with respect to the underlying regular metrical grid. In some cases, as in music from the Afro-Latin American tradition, such deviations appear systematically, disclosing their structural importance in rhythmic and stylistic configuration. In this work we explore the idea of automatically and jointly tracking beats and microtiming in timekeeper instruments of Afro-Latin American music, in particular Brazilian samba and Uruguayan candombe. To that end, we propose a language model based on conditional random fields that integrates beat and onset likelihoods as observations. We derive those activations using deep neural networks and evaluate its performance on manually annotated data using a scheme adapted to this task. We assess our approach in controlled conditions suitable for these timekeeper instruments, and study the microtiming profiles’ dependency on genre and performer, illustrating promising aspects of this technique towards a more comprehensive understanding of these music traditions. |
dc.description.es.fl_txt_mv | Trabajo presentado en ISMIR 2019 : 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 4-8 nov, 2019 Postprint |
dc.format.extent.es.fl_str_mv | 8 p. |
dc.format.mimetype.es.fl_str_mv | application/pdf |
dc.identifier.citation.es.fl_str_mv | Fuentes, M, Maia, L, Rocamora, M, Biscainho, L, Crayencour, H, Essid, S y Bello, J. "Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning" . Proceedings of the 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 2019. |
dc.identifier.uri.none.fl_str_mv | https://hdl.handle.net/20.500.12008/21752 |
dc.language.iso.none.fl_str_mv | en eng |
dc.rights.license.none.fl_str_mv | Licencia Creative Common Atribución (CC-BY) |
dc.rights.none.fl_str_mv | info:eu-repo/semantics/openAccess |
dc.source.none.fl_str_mv | reponame:COLIBRI instname:Universidad de la República instacron:Universidad de la República |
dc.title.none.fl_str_mv | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
dc.type.es.fl_str_mv | Artículo |
dc.type.none.fl_str_mv | info:eu-repo/semantics/article |
dc.type.version.none.fl_str_mv | info:eu-repo/semantics/publishedVersion |
description | Trabajo presentado en ISMIR 2019 : 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 4-8 nov, 2019 |
eu_rights_str_mv | openAccess |
format | article |
id | COLIBRI_7620ec5948329d8990e5ce3d38c62a0c |
identifier_str_mv | Fuentes, M, Maia, L, Rocamora, M, Biscainho, L, Crayencour, H, Essid, S y Bello, J. "Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning" . Proceedings of the 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 2019. |
instacron_str | Universidad de la República |
institution | Universidad de la República |
instname_str | Universidad de la República |
language | eng |
language_invalid_str_mv | en |
network_acronym_str | COLIBRI |
network_name_str | COLIBRI |
oai_identifier_str | oai:colibri.udelar.edu.uy:20.500.12008/21752 |
publishDate | 2019 |
reponame_str | COLIBRI |
repository.mail.fl_str_mv | mabel.seroubian@seciu.edu.uy |
repository.name.fl_str_mv | COLIBRI - Universidad de la República |
repository_id_str | 4771 |
rights_invalid_str_mv | Licencia Creative Common Atribución (CC-BY) |
spelling | Fuentes Magdalena, L2S, CNRS–Université Paris-Sud–CentraleSupélec (France)Maia Lucas S., Universidade Federal do Rio de Janeiro (Brasil)Rocamora Martín, Universidad de la República (Uruguay). Facultad de IngenieríaBiscainho Luiz W. P., Universidade Federal do Rio de Janeiro (Brasil)Crayencour Hélène C., L2S, CNRS–Université Paris-Sud–CentraleSupélec (France)Essid Slim, LTCI, Télécom Paris, Institut Polytechnique de Paris (France)Bello Juan P., New York University (USA). Music and Audio Research Laboratory2019-09-06T21:40:43Z2019-09-06T21:40:43Z2019Fuentes, M, Maia, L, Rocamora, M, Biscainho, L, Crayencour, H, Essid, S y Bello, J. "Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning" . Proceedings of the 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 2019.https://hdl.handle.net/20.500.12008/21752Trabajo presentado en ISMIR 2019 : 20th Conference of the International Society for Music Information Retrieval, Delft, Netherlands, 4-8 nov, 2019PostprintEvents in music frequently exhibit small-scale temporal deviations (microtiming), with respect to the underlying regular metrical grid. In some cases, as in music from the Afro-Latin American tradition, such deviations appear systematically, disclosing their structural importance in rhythmic and stylistic configuration. In this work we explore the idea of automatically and jointly tracking beats and microtiming in timekeeper instruments of Afro-Latin American music, in particular Brazilian samba and Uruguayan candombe. To that end, we propose a language model based on conditional random fields that integrates beat and onset likelihoods as observations. We derive those activations using deep neural networks and evaluate its performance on manually annotated data using a scheme adapted to this task. We assess our approach in controlled conditions suitable for these timekeeper instruments, and study the microtiming profiles’ dependency on genre and performer, illustrating promising aspects of this technique towards a more comprehensive understanding of these music traditions.Submitted by Seroubian Mabel (mabel.seroubian@seciu.edu.uy) on 2019-09-06T21:40:43Z No. of bitstreams: 2 license_rdf: 19874 bytes, checksum: 38cb62ef53e6f513db2fb7e337df6485 (MD5) FMRBCEB19.pdf: 585970 bytes, checksum: 9b9b5b2506b1b76172c5bdcc6cab43f3 (MD5)Made available in DSpace on 2019-09-06T21:40:43Z (GMT). No. of bitstreams: 2 license_rdf: 19874 bytes, checksum: 38cb62ef53e6f513db2fb7e337df6485 (MD5) FMRBCEB19.pdf: 585970 bytes, checksum: 9b9b5b2506b1b76172c5bdcc6cab43f3 (MD5) Previous issue date: 20198 p.application/pdfenengLas obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)info:eu-repo/semantics/openAccessLicencia Creative Common Atribución (CC-BY)Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learningArtículoinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:COLIBRIinstname:Universidad de la Repúblicainstacron:Universidad de la RepúblicaFuentes, MagdalenaMaia, Lucas S.Rocamora, MartínBiscainho, Luiz W. P.Crayencour, Hélène C.Essid, SlimBello, Juan P.Procesamiento de SeñalesProcesamiento de AudioLICENSElicense.txtlicense.txttext/plain; charset=utf-84267http://localhost:8080/xmlui/bitstream/20.500.12008/21752/5/license.txt6429389a7df7277b72b7924fdc7d47a9MD55CC-LICENSElicense_urllicense_urltext/plain; charset=utf-844http://localhost:8080/xmlui/bitstream/20.500.12008/21752/2/license_urla0ebbeafb9d2ec7cbb19d7137ebc392cMD52license_textlicense_texttext/html; charset=utf-838297http://localhost:8080/xmlui/bitstream/20.500.12008/21752/3/license_text4fe6ac477f5a2df0424a5ff1a9bf000cMD53license_rdflicense_rdfapplication/rdf+xml; charset=utf-819874http://localhost:8080/xmlui/bitstream/20.500.12008/21752/4/license_rdf38cb62ef53e6f513db2fb7e337df6485MD54ORIGINALFMRBCEB19.pdfFMRBCEB19.pdfapplication/pdf585970http://localhost:8080/xmlui/bitstream/20.500.12008/21752/1/FMRBCEB19.pdf9b9b5b2506b1b76172c5bdcc6cab43f3MD5120.500.12008/217522024-07-24 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- Universidad de la Repúblicafalse |
spellingShingle | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning Fuentes, Magdalena |
status_str | publishedVersion |
title | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
title_full | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
title_fullStr | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
title_full_unstemmed | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
title_short | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
title_sort | Tracking beats and microtiming in Afro-Latin American music using conditional random fields and deep learning |
url | https://hdl.handle.net/20.500.12008/21752 |