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A modal approach to the numerical simulation of a string vibrating against an obstacle: Applications to sound synthesis

  • Sorbonne Université
  • University of Edinburgh

Résultats de recherche: Contribution à un journalArticle de conférenceRevue par des pairs

6 Citations (Scopus)

Résumé

A number of musical instruments (electric basses, tanpuras, sitars...) have a particular timbre due to the contact between a vibrating string and an obstacle. In order to simulate the motion of such a string with the purpose of sound synthesis, various technical issues have to be resolved. First, the contact phenomenon, inherently nonlinear and producing high frequency components, must be described in a numerical manner that ensures stability. Second, as a key ingredient for sound perception, a fine-grained frequencydependent description of losses is necessary. In this study, a new conservative scheme based on a modal representation of the displacement is presented, allowing the simulation of a stiff, damped string vibrating against an obstacle with an arbitrary geometry. In this context, damping parameters together with eigenfrequencies of the system can be adjusted individually, allowing for complete control over loss characteristics. Two cases are then numerically investigated: a point obstacle located in the vicinity of the boundary, mimicking the sound of the tanpura, and then a parabolic obstacle for the sound synthesis of the sitar.

langue originaleAnglais
Pages (de - à)167-174
Nombre de pages8
journalProceedings of the International Conference on Digital Audio Effects, DAFx
étatPublié - 1 janv. 2016
Evénement19th International Conference on Digital Audio Effects, DAFx 2016 - Brno, République tchcque
Durée: 5 sept. 20169 sept. 2016

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