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2026 Xiao Synthetic Power Grid Scenarios

Chenhan Xiao, Xinyu He

2026enpower systemssynthetic gridsgraph generationdiffusion modelstime-seriesoperational feasibility

Abstract

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Synthetic power-grid scenarios are essential for planning, resilience assessment, contingency analysis, and data-driven power-system applications. Recent synthetic grid generation methods have improved structural realism and operational feasibility by incorporating engineering knowledge through post-generation validation, optimization, or physics-aware generation. However, generated scenarios may still exhibit low AC feasibility and robustness, limiting their practical value for downstream power-system studies. This paper proposes a feasibility-aware distribution-learning framework that learns the AC-operable joint distribution of network topology, branch electrical parameters, and time-varying load profiles. Instead of enforcing feasibility after generation, the proposed framework incorporates AC power-flow convergence and operational constraints into hierarchical diffusion-based distribution learning. This enables the generator itself to produce operationally feasible grid scenarios through efficient diffusion sampling. The hierarchical architecture decomposes the high-dimensional generation task into three engineering-motivated stages: topology and bus-attribute generation, branch-parameter generation conditioned on the generated structure, and load-profile generation conditioned on both network structure and electrical characteristics. Experiments on benchmark systems demonstrate that the proposed framework significantly improves operational feasibility and contingency robustness while maintaining strong statistical fidelity and eliminating optimization-based post-processing.

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Cite This Work

@article{5baefae0-e278-4924-b84c-ddb8924ffc79,
  title={2026 Xiao Synthetic Power Grid Scenarios},
  author={Chenhan Xiao and Xinyu He},
  year={2026},
  language={en}
}
TY  - JOUR
TI  - 2026 Xiao Synthetic Power Grid Scenarios
AU  - Chenhan Xiao
AU  - Xinyu He
PY  - 2026
LA  - en
ER  -

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