A data-driven approach to violin making

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作者
Sebastian Gonzalez
Davide Salvi
Daniel Baeza
Fabio Antonacci
Augusto Sarti
机构
[1] DEIB-Politecnico di Milano,Musical Acoustics Lab at the Violin Museum of Cremona
[2] University of Chile,Department of Electrical Engineering, Faculty of Physical and Mathematical Sciences
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摘要
Of all the characteristics of a violin, those that concern its shape are probably the most important ones, as the violin maker has complete control over them. Contemporary violin making, however, is still based more on tradition than understanding, and a definitive scientific study of the specific relations that exist between shape and vibrational properties is yet to come and sorely missed. In this article, using standard statistical learning tools, we show that the modal frequencies of violin tops can, in fact, be predicted from geometric parameters, and that artificial intelligence can be successfully applied to traditional violin making. We also study how modal frequencies vary with the thicknesses of the plate (a process often referred to as plate tuning) and discuss the complexity of this dependency. Finally, we propose a predictive tool for plate tuning, which takes into account material and geometric parameters.
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