Perceptual implications of simplifying geometrical acoustics models for Ambisonics-based binaural reverberation
Vincent Martin, Isaac Engel, Lorenzo Picinali

TL;DR
This study explores how simplifying room geometry and absorption frequency resolution affects the perceptual realism of Ambisonics-based binaural reverberation, balancing computational efficiency with perceptual authenticity.
Contribution
It provides empirical evidence on the perceptual effects of geometric and acoustic parameter simplifications in virtual reverberation rendering.
Findings
Lowering absorption frequency resolution significantly impacts perception.
Simplifying room geometry has a less notable perceptual effect.
Numerical acoustic parameters correlate with perceptual differences.
Abstract
Different methods can be employed to render virtual reverberation, often requiring substantial information about the room's geometry and the acoustic characteristics of the surfaces. However, fully comprehensive approaches that account for all aspects of a given environment may be computationally costly and redundant from a perceptual standpoint. For these methods, achieving a trade-off between perceptual authenticity and model's complexity becomes a relevant challenge. This study investigates this compromise through the use of geometrical acoustics to render Ambisonics-based binaural reverberation. Its precision is determined, among other factors, by its fidelity to the room's geometry and to the acoustic properties of its materials. The purpose of this study is to investigate the impact of simplifying the room geometry and the frequency resolution of absorption coefficients on the…
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Taxonomy
TopicsSpeech and Audio Processing · Hearing Loss and Rehabilitation · Underwater Acoustics Research
