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arXiv research

A locally-built, LLM-digested index of recent arXiv papers in quant finance, geometry/topology, and statistical ML — keyword search served straight from SQLite on this machine.

169,181 papers · 148 categories

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48 results for Power System Operation

Paper proposes a new method to secure power system operation using machine learning.

problem Ensuring secure power system operation under high uncertainty.
method Embedding disjunctive rules from Decision Trees in an optimization framework using GDP and a two-step search method.
result The method achieves efficient system control at a marginal increase in system price compared to an oracle model.

Sparse oblique decision tree improves security rules for renewable power systems.

problem Identifying secure operating conditions in power systems with high renewable energy.
method Sparse weighted oblique decision tree to learn and embed linear security rules.
result The method significantly increases secure states and reduces solution time.

Decision-calibrated prediction sets improve power system operations by reducing unnecessary costs.

problem Balancing operating costs and reliability in power systems with renewable uncertainty.
method Learn conditional prediction sets as sub-level sets of norm-based score functions, calibrate uncertainty sets based on reliability of downstream decisions.
result Decision-calibrated sets lead to more efficient operations with smaller uncertainty sets and lower costs compared to standard coverage-based calibration.

Optimizes power systems with energy storage under uncertainty using scenario-based method.

problem Optimizing power systems with energy storage, intermittent renewable generation, and uncontrollable loads under uncertainty.
method Developed a novel solution method based on scenario optimization and strategic sampling to solve the chance-constrained optimal power system operation problem.
result The strategic sampling method significantly improves computational efficiency and data-driven convex approximation of power flow.

The grid integration of intermittent Renewable Energy Sources (RES) causes costs for grid operators due to forecast uncertainty and the resulting production schedule mismatches. These so-called profile service costs are marginal cost components and can be understood as an insurance fee against RES production schedule u…

2014-07-27abs ↗pdf ↗

Paper analyzes CCT sensitivity in constrained power systems, offering insights into system stability and parameter changes.

problem Identifying preventive control measures to avoid large generation losses during disturbances.
method Derived first-order CCT sensitivity for generic constrained power systems using trajectory sensitivity computation.
result Sensitivity of CCT to system parameters, providing insights into feasibility and stability.

A deep learning method speeds up probabilistic optimal power flow calculations.

problem Efficiently solving large-scale nonlinear and nonconvex optimization problems in power systems.
method Developed a SDAE-based OPF using stacked denoising auto encoders to extract system correlations and calculate OPF solutions.
result The trained SDAE network can quickly compute OPF solutions for random system states without optimization.

Physics-guided neural network improves power flow analysis.

problem Infeasibility of traditional numerical approaches due to outdated or unavailable PF equations.
method Proposes a physics-guided neural network to learn PF mappings from historical data while constraining by physical laws.
result Physics-guided neural network achieves better performance and generalizability than unconstrained data-driven approaches.

Study identifies disturbance location and magnitude in power systems.

problem Identifying the location and magnitude of disturbances in interconnected power systems.
method Model-free approach using frequency data from generators; logistic regression for localization, linear regression for magnitude estimation.
result Achieves highly accurate localization and estimation performance in the presence of noise and missing data.

Machine learning helps dispatchers manage power grids more efficiently.

problem Managing power grids with varying demands and complex production systems.
method Developed novel machine learning techniques to mimic human decisions and devise remedial actions.
result The approach successfully prevents power flow limits violations in real-time.

Paper reconstructs distribution grid topology from voltage measurements.

problem Tracking changes in distribution grid topology is difficult due to limited real-time monitoring.
method Develops a learning framework using conditional independence tests for continuous random variables.
result Reconstructs radial operational structure of the distribution grid.

CoNBONet improves reliability analysis of complex systems with fast, energy-efficient predictions.

problem Time-dependent reliability analysis of nonlinear systems under stochastic excitations is computationally demanding.
method CoNBONet combines deep operator networks with neuroscience-inspired neuron models for fast, energy-efficient inference.
result CoNBONet provides reliable coverage of failure probabilities with theoretical guarantees.

Neural Power Unit (NPU) learns arbitrary power functions on real numbers.

problem Neural Networks struggle with generalizing beyond seen data and arithmetic operations.
method Introduces Neural Power Unit (NPU) that operates on real numbers and learns arbitrary power functions.
result NPU outperforms competitors in accuracy and sparsity on arithmetic datasets and discovers governing equations from data.

Paper uses deep reinforcement learning for adaptive emergency control of power systems.

problem Traditional emergency control schemes are inadequate for modern power grids due to increasing uncertainties.
method Developed deep reinforcement learning (DRL) for adaptive emergency control of power systems.
result Demonstrated excellent performance and robustness of DRL-based emergency control schemes in various scenarios.

DOODL learns shared spectral dynamics across related dynamical systems.

problem Learning independent dynamical operators for each system limits discovery of shared structure.
method DOODL learns a dictionary of characteristic spectral dynamics on a manifold of related systems.
result DOODL achieves errors one to two orders of magnitude lower than independent operator estimation methods.

GP CC-OPF solves uncertain power grid optimization with Gaussian Process.

problem Uncertainty in power grid operations due to high renewables integration.
method Data-driven Gaussian Process regression for solving non-convex CC-OPF problem.
result Effective economic dispatch optimization in uncertain power grids.

Paper shows geometric frequency and Lagrange derivative equivalence for electric and fluid systems.

problem Understanding and classifying system operating conditions based on electric quantity waveform distortions.
method Demonstrates equivalence between geometric frequency and Lagrange derivative through numerical examples.
result Identifies components of Lagrange derivative that relate to geometric frequency and waveform distortions.

Paper proposes a method for weather-informed probabilistic forecasting and scenario generation in power systems.

problem Challenges of integrating renewable energy sources into power grids due to their stochasticity and uncertainty.
method Combines probabilistic forecasting and Gaussian copula for day-ahead prediction and scenario generation of load, wind, and solar power.
result Demonstrates superior performance of the proposed weather-informed Temporal Fusion Transformer (WI-TFT) model.

Deep neural networks improve real-time power system state estimation and forecasting.

problem Real-time monitoring of power grids with large-scale renewable generation and electric vehicles.
method Developed a novel model-specific DNN for real-time PSSE and used deep RNNs for forecasting.
result Improved performance compared to existing alternatives, including Gauss-Newton PSSE solver.

Paper uses DRL for automated power allocation in satellites.

problem Manual resource allocation is impractical for satellites with many power degrees of freedom.
method Continuous state and action spaces, Proximal Policy Optimization (PPO) algorithm.
result DRL shows promising results for minimum Unmet System Demand and power consumption.

New approach uses machine learning to control DERs without centralized communication.

problem Optimal power flow requires extensive communication; new method uses local data.
method Data-driven approach to learn control policies for DERs to mimic centralized OPF solutions.
result Decentralized controllers closely match centralized OPF solution, providing near optimal performance.

FMOPF generates diverse near-optimal power flow solutions.

problem Generating diverse near-optimal power flow solutions for risk quantification.
method Decouples compression from generation through latent flow matching and explicitly models load-state coupling.
result FMOPF provides the most effective Newton-Raphson warm starts and lowest tail risk.

DiffOPF solves multi-valued OPF problems by sampling from system history.

problem Multi-valued and non-convex OPF problems due to system parameter variability.
method DiffOPF treats OPF as a conditional sampling problem, learning from historical data.
result DiffOPF enables statistically credible warm starts with favorable cost and constraint satisfaction trade-offs.

Optimizes BESS for cross-market energy arbitrage to boost revenues.

problem Charging and discharging BESS at optimal times to maximize profits.
method Developed a generic framework, backtest engine, and optimization strategy.
result Boosted revenues by 10% through strategic BESS operation.

This paper optimizes a power-to-heat system using reinforcement learning for cost minimization under uncertain conditions.

problem Optimizing a power-to-heat system with fluctuating renewable energy sources.
method Stochastic optimal control, reinforcement learning (Q-learning).
result Reinforcement learning provides an efficient solution to the optimization problem.

New framework uses OR to ensure AI systems make safe decisions.

problem Ensuring generative AI systems make safe decisions as they gain autonomy.
method Developed a conceptual framework combining flow-based models and adversarial robustness.
result Increased autonomy requires new OR approaches for feasibility, robustness, and stress testing.

LIQSS method improves accuracy and efficiency for power system simulations.

problem Accurately modeling and simulating long-duration mission profiles of Naval power systems.
method Linear Implicit Quantized State System (LIQSS) method for stiff, nonlinear, differential algebraic equations.
result LIQSS1 method yields results within 1% accuracy of continuous methods and increases efficiency logarithmically with quantization size.

Study optimizes building energy control and power planning using RL.

problem Optimizing academic buildings' HVAC and power systems.
method Reinforcement Learning (RL) for scheduling and planning.
result Algorithm optimizes hourly energy usage and handles short-term changes.

Introduce Collapsed Effective Operators for higher-order structures.

problem Existing spectral operators decompose topology into separate ranks, leaving practitioners to fuse information back to vertices.
method Introduce Collapsed Effective Operators via Schur complementation of a graded Laplacian.
result Preserves positive semi-definiteness, lowers system energy under higher-order connectivity.

Paper learns Koopman operator from sparse data, escaping function space constraints.

problem Learning Koopman operator from non-closed function spaces.
method Operator stochastic approximation algorithm using conditional mean embeddings (CME).
result Online sparse learning algorithm with trajectory-based sampling guarantees.