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March 5, 20260 citations

Unveiling high-dimensional time-varying extreme risk spillovers: AI-driven warning signals in the global energy market

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XXXin XuYWYizhi WangQXQichang Xie

Key Points

  • To investigate extreme risk spillovers in global energy markets and develop an effective warning system.
  • Utilized the HD-TVP-VAR-SP model to analyze risk spillovers
  • Developed an energy risk warning system using Long Short Term Memory (LSTM) model
  • Compared LSTM's predictive performance against other machine learning models
  • Identified the Americas as a key contributor to systemic risk shocks
  • Revealed robust connectivity in global energy market risks
  • The oil market is a critical driver of risk contagion, with LSTM outperforming other models in predictions

Abstract

This paper investigates extreme risk spillovers in global energy markets using the enhanced highdimensional time-varying parameter vector autoregressive spillover (HD-TVP-VAR-SP) model. Weemploy the Long Short Term Memory (LSTM) model to develop an energy risk warning system,identifying key factors in risk contagion. Our findings reveal robust connectivity in global energymarket risks, characterized by high-dimensional complex networks with marked temporal variations.The Americas region emerges as the leading contributor to systemic risk shocks, primarily throughpositive spillovers in its energy markets. The LSTM model demonstrates superior extreme riskprediction compared to other machine learning models like Gradient Boosting Machines, RandomForest, and Decision Trees. The oil market is identified as a critical driver of risk contagion in theenergy sector. These insights provide valuable guidance for effectively identifying and managingglobal energy market risks and enhancing risk warning systems.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69a91d8dd6127c7a504c0657https://doi.org/10.1080/1351847x.2026.2639441
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