Content area

Abstract

Auralization, analogous to visualization, is the generation of sound fields (virtual or physical) through the use of simulation. Multiple methods of auralization have been explored, with acoustic simulation and simulation of acoustic propagation being primary contenders. These simulations place emphasis on physical accuracy, simulating real world effects such as wave diffraction and reverberation, which can often cause them to run at sub-interactive rates. Performant simulations are also given great emphasis, as usability increases with a decrease in per frame run-time, but physical accuracy is often sacrificed to achieve higher performance. Meanwhile, similar problem statements are being addressed in the realm of light transport, with recent advancements increasing physical accuracy in real time simulations. An exploration of such advancements is done to evaluate their ability to tackle the same problem statements in acoustic simulation. Evaluating the different advances in wave propagation, finally a free space BSDF formulation is defined to conduct diffractions of sound waves using a ray tracing approach. Finally, a proposed GPU accelerated application is outlined to generate and visualize the auralization of a sound field in a room. The use of GPU acceleration results in a speedup of more than 500, and significantly improves performance while recreating important wave propagation features.

Details

1010268
Title
Physically Based, GPU Accelerated Auralization of 3D Volumes Using Free Space Diffractions
Number of pages
55
Publication year
2025
Degree date
2025
School code
0183
Source
MAI 86/12(E), Masters Abstracts International
ISBN
9798286403646
Committee member
Bera, Aniket; Whittinghill, David M.
University/institution
Purdue University
University location
United States -- Indiana
Degree
M.S.
Source type
Dissertation or Thesis
Language
English
Document type
Dissertation/Thesis
Dissertation/thesis number
32013765
ProQuest document ID
3224573701
Document URL
https://www.proquest.com/dissertations-theses/physically-based-gpu-accelerated-auralization-3d/docview/3224573701/se-2?accountid=208611
Copyright
Database copyright ProQuest LLC; ProQuest does not claim copyright in the individual underlying works.
Database
2 databases
  • ProQuest One Academic
  • ProQuest One Academic