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  4. Massively Parallel Adaptive Collapsing of Edges for Unstructured Tetrahedral Meshes
 
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2023
Conference Paper
Title

Massively Parallel Adaptive Collapsing of Edges for Unstructured Tetrahedral Meshes

Abstract
Many tasks in computer graphics and engineering involve unstructured tetrahedral meshes. Numerical methods such as the finite element method (FEM) oftentimes use tetrahedral meshes to compute a solution for complex problems such as physically-based simulation or shape deformation. As each tetrahedron costs computationally, coarsening tetrahedral meshes typically reduces the overhead of numerical methods, which is attractive for interactive applications. In order to enable reduction of the tetrahedron count, we present a quick adaptive coarsening method for unstructured tetrahedral meshes. Our method collapses edges using the massively parallel processing power of present day graphics processing units (GPU)s to achieve run times of up to one order of magnitude faster than sequential collapsing. For efficient exploitation of parallel processing power, we contribute a quick method for finding a compact set of conflict-free sub-meshes, which results in up to 59% fewer parallel collapsing iterations compared to the state of the art massively parallel conflict detection.
Author(s)
Ströter, Daniel
TU Darmstadt, Fachgebiet Graphisch-Interaktive Systeme  
Stork, Andre
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Fellner, Dieter
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Mainwork
High-Performance Graphics 2023. Symposium Papers  
Project(s)
Digital twins bringing agility and innovation to manufacturing SMEs, by empowering a network of DIHs with an integrated digital platform that enables Manufacturing as a Service (MaaS)  
Funder
European Commission  
Conference
Symposium "High-Performance Graphics" 2023  
DOI
10.2312/hpg.20231139
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • Branche: Automotive Industry

  • Branche: Information Technology

  • Research Line: (Interactive) simulation (SIM)

  • Research Line: Modeling (MOD)

  • LTA: Generation, capture, processing, and output of images and 3D models

  • Parallel algorithms

  • Volumetric models

  • Simulation

  • Physically based simulation

  • Meshes

  • Remeshing

  • Mesh Simplification

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