专题:Electricity Theft Detection Techniques

This cluster of papers focuses on the detection and prevention of electricity theft in smart grids, particularly through the use of advanced metering infrastructure, machine learning, deep learning, and anomaly detection techniques. The research explores methods such as support vector machines, decision trees, convolutional neural networks, and feature engineering to address non-technical losses and improve the security of electricity distribution systems.
最新文献
An AI-driven framework for efficient and accurate calibration of electricity meters using extreme gradient boosting

article Full Text OpenAlex

Evaluating Reconstruction-Based and Proximity-Based Methods: A Four-Way Comparison (AE, LSTM-AE, OCSVM, IF) in SCADA Anomaly Detection Under Inverted Imbalance

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Ensuring security in coupled distribution networks and electric vehicles-integrated energy storage systems: Transfer-safe reinforcement learning

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Anomaly Detection in EVCS using Federated Learning with Auto-Optimized Edge Models

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Joint Forecasting of Energy Consumption and Generation in P2P Networks Using LSTM–CNN and Transformers

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Potential for energy poverty reduction by error decomposition with machine learning

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Fuse and Federate: Enhancing EV Charging Station Security with Multimodal Fusion and Federated Learning

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Data reconstruction-enabled robust hybrid models for intraday electricity price forecasting against data contamination attacks

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BiLSTM-PINN-based wind turbine power prediction architecture and anomaly data identification

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Abnormal Power Usage Detection: A Metrics‐Based Scheme for Low Sampling Data

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近5年高被引文献
A review of ensemble learning and data augmentation models for class imbalanced problems: Combination, implementation and evaluation

review Full Text OpenAlex 408 FWCI71.8248

Parrot optimizer: Algorithm and applications to medical problems

article Full Text OpenAlex 374 FWCI134.3287

A Review on Digital Twin Technology in Smart Grid, Transportation System and Smart City: Challenges and Future

review Full Text OpenAlex 342 FWCI63.3673

A Review of Graph Neural Networks and Their Applications in Power Systems

review Full Text OpenAlex 330 FWCI27.9293

Financial Fraud Detection Based on Machine Learning: A Systematic Literature Review

article Full Text OpenAlex 315 FWCI41.1127

A Comparison of Undersampling, Oversampling, and SMOTE Methods for Dealing with Imbalanced Classification in Educational Data Mining

article Full Text OpenAlex 313 FWCI55.4543

A survey on imbalanced learning: latest research, applications and future directions

article Full Text OpenAlex 310 FWCI111.0085

A theoretical distribution analysis of synthetic minority oversampling technique (SMOTE) for imbalanced learning

article Full Text OpenAlex 298 FWCI52.4603

A broad review on class imbalance learning techniques

review Full Text OpenAlex 230 FWCI40.4895

The class imbalance problem in deep learning

article Full Text OpenAlex 221 FWCI27.2935