S. Kaneko, I. Shahid, N. Roy, N. A. Gumerov, and R. Duraiswami, “Personal active soundfield control (PASCAL) framework,” in Proc. AES Conference: AES 2022 International Audio for Virtual and Augmented Reality Conference, Aug. 2022, Paper 8. [Online]. Available: https://aes.org/publications/elibrary-page/?id=21838
Kaneko S, Shahid I, Roy N, Gumerov NA, Duraiswami R. Personal active soundfield control (PASCAL) framework. In: AES Conference: AES 2022 International Audio for Virtual and Augmented Reality Conference. Audio Engineering Society; 2022. Paper 8. Available from: https://aes.org/publications/elibrary-page/?id=21838
@inproceedings{Kaneko2022_21838,
author = {Kaneko, Shoken and Shahid, Irtaza and Roy, Nirupam and Gumerov, Nail A. and Duraiswami, Ramani},
title = {{Personal active soundfield control (PASCAL) framework}},
booktitle = {AES Conference: AES 2022 International Audio for Virtual and Augmented Reality Conference},
note = {Paper 8},
year = {2022},
month = aug,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=21838}
}
TY - CPAPER
TI - Personal active soundfield control (PASCAL) framework
AU - Kaneko, Shoken
AU - Shahid, Irtaza
AU - Roy, Nirupam
AU - Gumerov, Nail A.
AU - Duraiswami, Ramani
T2 - AES Conference: AES 2022 International Audio for Virtual and Augmented Reality Conference
M1 - Paper 8
PY - 2022
DA - 2022/08/06
UR - https://aes.org/publications/elibrary-page/?id=21838
PB - Audio Engineering Society
LA - en
AB - A framework for actively controlling radiated, incident, or local personal sound fields is presented. It relies on loudspeakers and microphones either worn by the user or surrounding the user. The framework aims to address tasks such as speech privacy, personal active noise cancellation, and immersive audio presentation with limited amplification/injection of noise or leakage of private speech into the environment. The formulation relies on modeling and simulation of the sound field using a fast multipole accelerated boundary element method, spectral or point mea-surements of the sound field, and regularized optimization of the field created by actively controlled speakers. The use of acoustic simulation enables the utilization of transfer functions associated with a large number of points distributed in space resulting in effective regularization. Radiation cancellation of up to 20 dB was observed in low frequencies below 1 kHz in a numerical experiment using real-world impulse responses of a wearable loudspeaker setup.
ER -