VLDB 2026 Research / reviewers in the wild / expert
Timo Heister
dblp:84/8779
· DBLP profile ↗
4ranked-venue papers
1as first author
1since 2021 · last 2021
0000-0002-8137-3903ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Theory of computation · 2 · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2021 | A Flexible, Parallel, Adaptive Geometric Multigrid Method for FEMabstractWe present the design and implementation details of a geometric multigrid method on adaptively refined meshes for massively parallel computations. The method uses local smoothing on the refined part of the mesh. Partitioning is achieved by using a space filling curve for the leaf mesh and distributing ancestors in the hierarchy based on the leaves. We present a model of the efficiency of mesh hierarchy distribution and compare its predictions to runtime measurements. The algorithm is implemented as part of the deal.II finite-element library and as such available to the public. Thomas C. Clevenger, Timo Heister, Guido Kanschat, Martin Kronbichler 0002 |
ACM Trans. Math. Softw. | 2 |
| 2020 | CPU Ray Tracing of Tree-Based Adaptive Mesh Refinement DataabstractAdaptive mesh refinement (AMR) techniques allow for representing a simulation's computation domain in an adaptive fashion. Although these techniques have found widespread adoption in high-performance computing simulations, visualizing their data output interactively and without cracks or artifacts remains challenging. In this paper, we present an efficient solution for direct volume rendering and hybrid implicit isosurface ray tracing of tree-based AMR (TB-AMR) data. We propose a novel reconstruction strategy, Generalized Trilinear Interpolation (GTI), to interpolate across AMR level boundaries without cracks or discontinuities in the surface normal. We employ a general sparse octree structure supporting a wide range of AMR data, and use it to accelerate volume rendering, hybrid implicit isosurface rendering and value queries. We demonstrate that our approach achieves artifact-free isosurface and volume rendering and provides higher quality output images compared to existing methods at interactive rendering rates. Feng Wang 0013, Nathan Marshak, Will Usher 0001, Carsten Burstedde, Aaron Knoll, Timo Heister, Chris R. Johnson 0001 |
Comput. Graph. Forum | 6 |
| 2011 | Algorithms and data structures for massively parallel generic adaptive finite element codesabstractToday's largest supercomputers have 100,000s of processor cores and offer the potential to solve partial differential equations discretized by billions of unknowns. However, the complexity of scaling to such large machines and problem sizes has so far prevented the emergence of generic software libraries that support such computations, although these would lower the threshold of entry and enable many more applications to benefit from large-scale computing. We are concerned with providing this functionality for mesh-adaptive finite element computations. We assume the existence of an “oracle” that implements the generation and modification of an adaptive mesh distributed across many processors, and that responds to queries about its structure. Based on querying the oracle, we develop scalable algorithms and data structures for generic finite element methods. Specifically, we consider the parallel distribution of mesh data, global enumeration of degrees of freedom, constraints, and postprocessing. Our algorithms remove the bottlenecks that typically limit large-scale adaptive finite element analyses. We demonstrate scalability of complete finite element workflows on up to 16,384 processors. An implementation of the proposed algorithms, based on the open source software p4est as mesh oracle, is provided under an open source license through the widely used deal.II finite element software library. Wolfgang Bangerth, Carsten Burstedde, Timo Heister, Martin Kronbichler 0002 |
ACM Trans. Math. Softw. | 3 |
| 2010 | Massively Parallel Finite Element Programming
Timo Heister, Martin Kronbichler 0002, Wolfgang Bangerth |
EuroMPI | 1 |