ConStellaration: A dataset of QI-like stellarator plasma boundaries and optimization benchmarks
Santiago A. Cadena, Andrea Merlo, Emanuel Laude, Alexander Bauer, Atul Agrawal, Maria Pascu, Marija Savtchouk, Enrico Guiraud, Lukas Bonauer, Stuart Hudson, Markus Kaiser

TL;DR
This paper introduces a comprehensive dataset of QI stellarator plasma boundaries, along with optimization benchmarks and baselines, to facilitate data-driven approaches and accelerate fusion energy research.
Contribution
It provides the first open dataset of QI stellarator configurations, benchmarks for optimization problems, and demonstrates how learned models can generate feasible designs efficiently.
Findings
Dataset enables data-driven stellarator design.
Benchmarks facilitate standardized evaluation of optimization methods.
Learned models can produce feasible configurations without expensive simulations.
Abstract
Stellarators are magnetic confinement devices under active development to deliver steady-state carbon-free fusion energy. Their design involves a high-dimensional, constrained optimization problem that requires expensive physics simulations and significant domain expertise. Recent advances in plasma physics and open-source tools have made stellarator optimization more accessible. However, broader community progress is currently bottlenecked by the lack of standardized optimization problems with strong baselines and datasets that enable data-driven approaches, particularly for quasi-isodynamic (QI) stellarator configurations, considered as a promising path to commercial fusion due to their inherent resilience to current driven disruptions. Here, we release an open dataset of diverse QI-like stellarator plasma boundary shapes, paired with their ideal magnetohydrodynamic (MHD) equilibria…
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Taxonomy
TopicsMagnetic confinement fusion research · Solar and Space Plasma Dynamics
