A. Sarti and S. Tubaro, “Dynamical Modeling of Physics-Based Interactions in Musical Acoustics,” in Proc. AES Conference: 22nd International Conference: Virtual, Synthetic, and Entertainment Audio, Jun. 2002, Paper 000263. [Online]. Available: https://aes.org/publications/elibrary-page/?id=11121
Sarti A, Tubaro S. Dynamical Modeling of Physics-Based Interactions in Musical Acoustics. In: AES Conference: 22nd International Conference: Virtual, Synthetic, and Entertainment Audio. Audio Engineering Society; 2002. Paper 000263. Available from: https://aes.org/publications/elibrary-page/?id=11121
@inproceedings{Sarti2002_11121,
author = {Sarti, Augusto and Tubaro, Stefano},
title = {{Dynamical Modeling of Physics-Based Interactions in Musical Acoustics}},
booktitle = {AES Conference: 22nd International Conference: Virtual, Synthetic, and Entertainment Audio},
note = {Paper 000263},
year = {2002},
month = jun,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=11121}
}
TY - CPAPER
TI - Dynamical Modeling of Physics-Based Interactions in Musical Acoustics
AU - Sarti, Augusto
AU - Tubaro, Stefano
T2 - AES Conference: 22nd International Conference: Virtual, Synthetic, and Entertainment Audio
M1 - Paper 000263
PY - 2002
DA - 2002/06/06
UR - https://aes.org/publications/elibrary-page/?id=11121
PB - Audio Engineering Society
LA - en
AB - Current physics-based synthesis techniques tend to synthesize the interaction between different functional elements of a sound generator by treating it as a single system. On the other hand, when dealing with the physical modeling of complex sound generators this choice raises questions about the resulting flexibility of the adopted synthesis strategy. One way to overcome this problem is to approached it by individually synthesizing and discretizing the objects that contribute to the generation of sounds. In this paper we address the problem of how to physically model the interaction between objects in a dynamical fashion, through the automatic definition and implementation of a topology model that adapts to the contact and proximity conditions between the considered objects. We propose this with reference to applications of musical acoustics.
ER -