CORTEXA
← Browse
arxiveess.SY2026-07-06

Double interior-point regularization for large-scale capacity expansion

Leonard Göke, Giovanni Sansavini

Capacity expansion is a key tool for planning future energy systems. However, weather-dependent generation and long-duration storage result in problem sizes that exceed the computational limits of conventional interior-point solvers, making it impossible to plan renewable systems that are cost-efficient and reliable across a wide range of weather conditions. To tackle such large problems, this paper introduces the double interior-point regularization (DIP-set) for Benders Decomposition, combining the advantages of traversing the interior of the solution space while remaining close to a reference solution. We benchmark the method on a power-sector problem and an energy-system problem, varying problem size and the level of foresight during operations. Results demonstrate that DIP-set outperforms competing regularizations in all test cases. The speed-up increases with size, reaching 30-50% for the largest problems, which are the most critical for planning renewable systems and are too large for state-of-the-art methods. The key benefit of DIP-set is its ability to mitigate the sharp decrease in convergence as BD approaches the optimal solution.

View free PDFSource page

Related papers

arxivmath.OCeess.SY2026-07-17

Smoothed Two-Stage Decomposition Algorithm for Solving Large-Scale Transmission and Distribution AC-OPF Problems

Juan Ospina, Manuel Garcia, Xinyi Luo, Andreas Wachter, David M. Fobes, Russell Bent

The integration of distributed energy resources (DERs) into the power grid has introduced new challenges to AC optimal power flow (AC-OPF) problems. Traditional OPF optimize consider transmission systems, treating distribution networks as static loads. However, the growing presen…

View free PDFSource page
arxivquant-pheess.SYmath.OC2026-07-03

Nested-Loop Trajectory-Informed Variational Quantum Solver for Interior-Point OPF

Farshad Amani, Amin Kargarian

Optimal power flow (OPF) solved by an interior-point method (IPM) requires repeatedly solving Newton linear systems. When variational quantum linear solvers (VQLS) are used, each IPM iteration involves an additional nested inner variational optimization loop, which can significan…

View free PDFSource page
arxivcs.CEeess.SY2026-07-08

Toward Deployable Satellite Anomaly Detection: A Benchmark Study on Large-Scale ESA-ADB Telemetry

Andrea Nguyen, Dafne Rozenberg, Yeying Zhu, Peng Hu

Satellite anomaly detection is essential for maintaining mission reliability and spacecraft health, yet remains challenging due to the high-dimensional, irregular, and imbalanced nature of spacecraft telemetry data. This paper presents a systematic benchmark study evaluating supe…

View free PDFSource page
arxiveess.SYcs.MA2026-06-25

Scalability of Morality: A Particle-Based Numerical Study on the Decoupling of Law and Ethics in Large-Scale Populations

Amir Arslan Haghrah, Amir Aslan Haghrah

This study introduces a particle-based computational framework to investigate the scalability of morality and the systemic decoupling of formal law from decentralized social ethics in expanding populations. While micro-societies reinforce ethical conduct through local reciprocity…

View free PDFSource page
arxiveess.SY2026-07-02

A Dynamic Phasor Framework for Analysis of Subsynchronous Oscillations in Multi-Machine Systems with IBRs and Large Loads

Fiaz Hossain, Nilanjan Ray Chaudhuri, Constantino M. Lagoa, Alok Sinha, ai Gopal Vennelaganti, Mohammed E. Nassar

Although the electromagnetic transient (EMT) framework can capture subsynchronous oscillations (SSOs), it faces scalability issues for large-scale systems. Thus motivated, we propose a generalized dynamic phasor (DP) framework to analyze SSOs in multi-machine systems with inverte…

View free PDFSource page