S. J. Schlecht and E. A. P. Habets, “Sign-Agnostic Matrix Design for Spatial Artificial Reverberation with Feedback Delay Networks,” in Proc. AES Conference: 2018 AES International Conference on Spatial Reproduction - Aesthetics and Science, Jul. 2018, Paper P12-1. [Online]. Available: https://aes.org/publications/elibrary-page/?id=19639
Schlecht SJ, Habets EAP. Sign-Agnostic Matrix Design for Spatial Artificial Reverberation with Feedback Delay Networks. In: AES Conference: 2018 AES International Conference on Spatial Reproduction - Aesthetics and Science. Audio Engineering Society; 2018. Paper P12-1. Available from: https://aes.org/publications/elibrary-page/?id=19639
@inproceedings{Schlecht2018_19639,
author = {Schlecht, Sebastian J. and Habets, Emanuël A. P.},
title = {{Sign-Agnostic Matrix Design for Spatial Artificial Reverberation with Feedback Delay Networks}},
booktitle = {AES Conference: 2018 AES International Conference on Spatial Reproduction - Aesthetics and Science},
note = {Paper P12-1},
year = {2018},
month = jul,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=19639}
}
TY - CPAPER
TI - Sign-Agnostic Matrix Design for Spatial Artificial Reverberation with Feedback Delay Networks
AU - Schlecht, Sebastian J.
AU - Habets, Emanuël A. P.
T2 - AES Conference: 2018 AES International Conference on Spatial Reproduction - Aesthetics and Science
M1 - Paper P12-1
PY - 2018
DA - 2018/07/06
UR - https://aes.org/publications/elibrary-page/?id=19639
PB - Audio Engineering Society
LA - en
AB - Feedback delay networks (FDNs) are an ef?cient tool for creating arti?cial reverberation. Recently, various designs for spatially extending the FDN were proposed. A central topic in the design of spatial FDNs is the choice of the feedback matrix that governs the interaction between spatially distributed elements and therefore the spatial impression. In the design prototype, the feedback matrix is chosen to be unilossless such that the reverberation time is in?nite. However, in physics- and aesthetics-driven design of spatial FDNs, the target feedback matrix is not necessarily unilossless. This contribution proposes an optimization method for ?nding a close unilossless feedback matrix and improves the accuracy by relaxing the speci?cation of the target matrix phase component and focussing on the sign-agnostic component.
ER -