F.-M. Hoffmann, F. M. Fazi, and P. Nelson, “Plane Wave Identification with Circular Arrays by Means of a Finite Rate of Innovation Approach,” in Proc. AES Convention 140, May 2016, Paper 9521. [Online]. Available: https://aes.org/publications/elibrary-page/?id=18220
Hoffmann FM, Fazi FM, Nelson P. Plane Wave Identification with Circular Arrays by Means of a Finite Rate of Innovation Approach. In: AES Convention 140. Audio Engineering Society; 2016. Paper 9521. Available from: https://aes.org/publications/elibrary-page/?id=18220
@inproceedings{Hoffmann2016_18220,
author = {Hoffmann, Falk-Martin and Fazi, Filippo Maria and Nelson, Philip},
title = {{Plane Wave Identification with Circular Arrays by Means of a Finite Rate of Innovation Approach}},
booktitle = {AES Convention 140},
note = {Paper 9521},
year = {2016},
month = may,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=18220}
}
TY - CPAPER
TI - Plane Wave Identification with Circular Arrays by Means of a Finite Rate of Innovation Approach
AU - Hoffmann, Falk-Martin
AU - Fazi, Filippo Maria
AU - Nelson, Philip
T2 - AES Convention 140
M1 - Paper 9521
PY - 2016
DA - 2016/05/06
UR - https://aes.org/publications/elibrary-page/?id=18220
PB - Audio Engineering Society
LA - en
AB - Many problems in the field of acoustic measurements depend on the direction of incoming wave fronts w.r.t. a measurement device or aperture. This knowledge can be useful for signal processing purposes such as noise reduction, source separation, de-aliasing, and super-resolution strategies among others. This paper presents a signal processing technique for the identification of the directions of travel for the principal plane wave components in a sound field measured with a circular microphone array. The technique is derived from a finite rate of innovation data model and the performance is evaluated by means of a simulation study for different numbers of plane waves in the sound field.
ER -