P.-A. Gauthier, É. Chambatte, C. Camier, Y. Pasco, and A. Berry, “Beamforming Regularization, Scaling Matrices, and Inverse Problems for Sound Field Extrapolation and Characterization: Part I – Theory,” J. Audio Eng. Soc., vol. 62, no. 3, pp. 77–98, Mar. 2014, doi: 10.17743/jaes.2014.0007.
Gauthier PA, Chambatte É, Camier C, Pasco Y, Berry A. Beamforming Regularization, Scaling Matrices, and Inverse Problems for Sound Field Extrapolation and Characterization: Part I – Theory. J Audio Eng Soc. 2014;62(3):77-98. doi:10.17743/jaes.2014.0007
@article{Gauthier2014_17125,
author = {Gauthier, Philippe-Aubert and Chambatte, Éric and Camier, Cédric and Pasco, Yann and Berry, Alain},
title = {{Beamforming Regularization, Scaling Matrices, and Inverse Problems for Sound Field Extrapolation and Characterization: Part I – Theory}},
journal = {Journal of the Audio Engineering Society},
volume = {62},
number = {3},
pages = {77--98},
year = {2014},
month = mar,
publisher = {Audio Engineering Society},
doi = {10.17743/jaes.2014.0007},
url = {https://doi.org/10.17743/jaes.2014.0007}
}
TY - JOUR
TI - Beamforming Regularization, Scaling Matrices, and Inverse Problems for Sound Field Extrapolation and Characterization: Part I – Theory
AU - Gauthier, Philippe-Aubert
AU - Chambatte, Éric
AU - Camier, Cédric
AU - Pasco, Yann
AU - Berry, Alain
T2 - Journal of the Audio Engineering Society
J2 - J. Audio Eng. Soc.
VL - 62
IS - 3
SP - 77
EP - 98
PY - 2014
DA - 2014/03/06
DO - 10.17743/jaes.2014.0007
UR - https://doi.org/10.17743/jaes.2014.0007
PB - Audio Engineering Society
LA - en
AB - The underlying hypothesis in spatial sound reproduction technologies is that a listener immersed in a physical reconstruction of a target sound field will experience the appropriate perception over a large listening area. The aim of this paper is twofold: to develop and describe a method of spatial sound field extrapolation (SFE) based on microphone array measurements of arbitrary geometry, and to develop and define a sound field characterization method and a sound field classification based on known objective and subjective metrics. To achieve SFE, a recently developed method was proposed and further analyzed. Once SFE was achieved, the inverse problem solution was investigated to evaluate different sound field metrics: energy density, sound intensity, direction of arrival, diffuseness, velocity vector, energy vector, directional energy, interaural time difference, incident directivity factor, incident directivity index, and directional diffusion.
ER -