DocumentCode :
1506340
Title :
A Phase Grating Approach to Modeling Surface Diffusion in FDTD Room Acoustics Simulations
Author :
Kowalczyk, Konrad ; Van Walstijn, Maarten ; Murphy, Damian
Author_Institution :
Sonic Arts Res. Centre, Queen´´s Univ., Belfast, UK
Volume :
19
Issue :
3
fYear :
2011
fDate :
3/1/2011 12:00:00 AM
Firstpage :
528
Lastpage :
537
Abstract :
In this paper, a method for modeling diffusive boundaries in finite-difference time-domain (FDTD) room acoustics simulations with the use of impedance filters is presented. The proposed technique is based on the concept of phase grating diffusers, and realized by designing boundary impedance filters from normal-incidence reflection filters with added delay. These added delays, that correspond to the diffuser well depths, are varied across the boundary surface, and implemented using Thiran allpass filters. The proposed method for simulating sound scattering is suitable for modeling high frequency diffusion caused by small variations in surface roughness and, more generally, diffusers characterized by narrow wells with infinitely thin separators. This concept is also applicable to other wave-based modeling techniques. The approach is validated by comparing numerical results for Schroeder diffusers to measured data. In addition, it is proposed that irregular surfaces are modeled by shaping them with Brownian noise, giving good control over the sound scattering properties of the simulated boundary through two parameters, namely the spectral density exponent and the maximum well depth.
Keywords :
acoustic filters; acoustic impedance; acoustic wave scattering; all-pass filters; architectural acoustics; finite difference time-domain analysis; surface acoustic waves; surface diffusion; surface roughness; Brownian noise; FDTD room acoustics simulations; Schroeder diffusers; Thiran allpass filters; boundary surface; diffuser well depths; diffusive boundaries; finite-difference time-domain; high frequency diffusion; impedance filters; maximum well depth; narrow wells; normal-incidence reflection filters; phase grating approach; phase grating diffusers; sound scattering; spectral density exponent; surface diffusion modeling; surface roughness; wave-based modeling techniques; Acoustic reflection; Acoustic scattering; Added delay; Filters; Finite difference methods; Gratings; Rough surfaces; Surface impedance; Surface roughness; Time domain analysis; Acoustic refraction; acoustic scattering; acoustic signal processing; architectural acoustics; digital filters; finite-difference time-domain (FDTD) methods; fractals;
fLanguage :
English
Journal_Title :
Audio, Speech, and Language Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1558-7916
Type :
jour
DOI :
10.1109/TASL.2010.2051830
Filename :
5475232
Link To Document :
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