TY - JOUR
T1 - Parametric Ambisonic Encoding of Arbitrary Microphone Arrays
AU - McCormack, Leo
AU - Politis, Archontis
AU - Gonzalez, Raimundo
AU - Lokki, Tapio
AU - Pulkki, Ville
N1 - Funding Information:
Thisworkwas supported by the Aalto University Doctoral School of Electrical Engineering.
Publisher Copyright:
Author
PY - 2022
Y1 - 2022
N2 - This article proposes a parametric signal-dependent method for the task of encoding microphone array signals into Ambisonic signals. The proposed method is presented and evaluated in the context of encoding a simulated seven-sensor microphone array, which is mounted on an augmented reality headset device. Given the inherent flexibility of the Ambisonics format, and its popularity within the context of such devices, this array configuration represents a potential future use case for Ambisonic recording. However, due to its irregular geometry and non-uniform sensor placement, conventional signal-independent Ambisonic encoding is particularly limited. The primary aims of the proposed method are to obtain Ambisonic signals over a wider frequency band-width, and at a higher spatial resolution, than would otherwise be possible through conventional signal-independent encoding. The proposed method is based on a multi-source sound-field model and employs spatial filtering to divide the captured sound-field into its individual source and directional ambient components, which are subsequently encoded into the Ambisonics format at an arbitrary order. It is demonstrated through both objective and perceptual evaluations that the proposed parametric method outperforms conventional signal-independent encoding in the majority of cases.
AB - This article proposes a parametric signal-dependent method for the task of encoding microphone array signals into Ambisonic signals. The proposed method is presented and evaluated in the context of encoding a simulated seven-sensor microphone array, which is mounted on an augmented reality headset device. Given the inherent flexibility of the Ambisonics format, and its popularity within the context of such devices, this array configuration represents a potential future use case for Ambisonic recording. However, due to its irregular geometry and non-uniform sensor placement, conventional signal-independent Ambisonic encoding is particularly limited. The primary aims of the proposed method are to obtain Ambisonic signals over a wider frequency band-width, and at a higher spatial resolution, than would otherwise be possible through conventional signal-independent encoding. The proposed method is based on a multi-source sound-field model and employs spatial filtering to divide the captured sound-field into its individual source and directional ambient components, which are subsequently encoded into the Ambisonics format at an arbitrary order. It is demonstrated through both objective and perceptual evaluations that the proposed parametric method outperforms conventional signal-independent encoding in the majority of cases.
KW - ambisonic encoding
KW - Array signal processing
KW - Decoding
KW - Encoding
KW - Geometry
KW - Measurement
KW - microphone array processing
KW - Microphone arrays
KW - parametric spatial audio
KW - Recording
UR - http://www.scopus.com/inward/record.url?scp=85132734753&partnerID=8YFLogxK
U2 - 10.1109/TASLP.2022.3182857
DO - 10.1109/TASLP.2022.3182857
M3 - Article
AN - SCOPUS:85132734753
SN - 2329-9290
VL - 30
SP - 2062
EP - 2075
JO - IEEE/ACM Transactions on Audio Speech and Language Processing
JF - IEEE/ACM Transactions on Audio Speech and Language Processing
ER -