EDBT 2026 Demo / reviewers in the wild / expert
Anders Winka
dblp:392/8230
· DBLP profile ↗
2ranked-venue papers
0as first author
2since 2021 · last 2025
0009-0001-9256-1256ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 2 · 2 since 2021
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Computer architecture, parallel and distributed computing, and storage systems
2 papers |
High-performance computing · 41% Emerging computing paradigms · 41% GPUs and heterogeneous computing · 11% | |
| Interdisciplinary, comprehensive, and emerging computing
1 paper |
Computational science and engineering · 100% |
Topics — the 7 heaviest of 7, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Emerging computing paradigms › quantum computing › quantum simulation
quantum transport simulation |
1.6 | 2 | 2025 | Ab-initio Quantum Transport with the GW Approximation, 42, 240 Atoms, and Sustained Exascale Performance · SC 2025 Towards Exascale Simulations of Nanoelectronic Devices in the GW Approximation · SC 2024 |
Computational science and engineering › computational chemistry › electronic structure calculation
density functional theory |
0.9 | 1 | 2025 | Ab-initio Quantum Transport with the GW Approximation, 42, 240 Atoms, and Sustained Exascale Performance · SC 2025 |
High-performance computing › supercomputing
exascale computing |
0.9 | 1 | 2025 | Ab-initio Quantum Transport with the GW Approximation, 42, 240 Atoms, and Sustained Exascale Performance · SC 2025 |
High-performance computing
scientific computing systems |
0.8 | 1 | 2024 | Towards Exascale Simulations of Nanoelectronic Devices in the GW Approximation · SC 2024 |
Integrated circuit design › semiconductor device modeling
nanoscale device modeling |
0.3 | 1 | 2025 | Ab-initio Quantum Transport with the GW Approximation, 42, 240 Atoms, and Sustained Exascale Performance · SC 2025 |
GPUs and heterogeneous computing › GPU-accelerated scientific computing
GPU-accelerated simulation |
0.2 | 1 | 2024 | Towards Exascale Simulations of Nanoelectronic Devices in the GW Approximation · SC 2024 |
GPUs and heterogeneous computing
GPU and heterogeneous computing |
0.2 | 1 | 2024 | Towards Exascale Simulations of Nanoelectronic Devices in the GW Approximation · SC 2024 |
Methods — techniques the papers use, named apart from their topics
GW approximation · 2.5domain decomposition · 1.7NEGF · 1.7DFT · 1.7nonequilibrium green's function · 0.8density functional theory · 0.8
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | Ab-initio Quantum Transport with the GW Approximation, 42, 240 Atoms, and Sustained Exascale PerformanceabstractDesigning nanoscale electronic devices such as the currently manufactured nanoribbon field-effect transistors (NRFETs) requires advanced modeling tools capturing all relevant quantum mechanical effects. State-of-the-art approaches combine the non-equilibrium Green’s function (NEGF) formalism and density functional theory (DFT). However, as device dimensions do not exceed a few nanometers anymore, electrons are confined in ultra-small volumes, giving rise to strong electron-electron interactions. To account for these critical effects, DFT+NEGF solvers should be extended with the GW approximation, which massively increases their computational intensity. Here, we present the first implementation of the NEGF+GW scheme capable of handling NRFET geometries with dimensions comparable to experiments. This package, called QuaTrEx, makes use of a novel spatial domain decomposition scheme, can treat devices made of up to 84,480 atoms, scales very well on the Alps and Frontier supercomputers (> 80% weak scaling efficiency), and sustains an exascale FP64 performance on 42,240 atoms (1.15 Eflop/s). Nicolas Vetsch, Alexander Maeder, Vincent Maillou, Anders Winka, Jiang Cao, Grzegorz Kwasniewski, Leonard Deuschle, Torsten Hoefler, Alexandros Nikolaos Ziogas, Mathieu Luisier |
SC | 4 |
| 2024 | Towards Exascale Simulations of Nanoelectronic Devices in the GW ApproximationabstractExperimental development of gate-all-around silicon nanowire field-effect transistors (NWFETs), a viable replacement for FinFETs, can be complemented by technology computer-aided design. This requires the availability of advanced device simulators relying on a quantum transport (QT) approach without any empirical parameters as inputs. Concretely, all material properties should be described from first-principles, and the whole physics at play should be accurately modeled, particularly the strong electron-electron interactions occurring in highly confined structures such as NWFETs. To shed light on these many-body effects, we implement them within the self-consistent GW approximation into an ab initio QT solver called QuaTrEx, based on density functional theory and the Non-equilibrium Green’s Function formalism. We then simulate transistors made of up to 10,560 atoms on the LUMI supercomputer’s GPU partition, reaching a parallel efficiency of $\mathbf{7 4 \%}(\mathbf{6 0 \%}$) in weak (strong) scaling and an overall computational performance of 69.3 Pflop/s in double precision on 1,800 nodes. Leonard Deuschle, Alexander Maeder, Vincent Maillou, Nicolas Vetsch, Anders Winka, Jiang Cao, Alexandros Nikolaos Ziogas, Mathieu Luisier |
SC | 5 |