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August 21, 2025Journal of Geophysical Research Machine Learning and Computation0 citationsOpen Access

A Deep Learning‐Based Long‐Term ENSO Forecasting Model: 3D‐STransformer

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JLJie LianXWXinjiao WuSHSirong Huang

Key Points

  • The model predicts Niño3.4 sea surface temperature anomalies with high accuracy for up to 20 months ahead, demonstrating its reliability.
  • Key evidence shows a superior performance in prediction accuracy, supported by correlation metrics from three distinct datasets.
  • The method incorporates a deep learning framework through a 3D-Transformer, enhancing understanding of ENSO through multi-head attention mechanisms.
  • This model highlights the importance of advanced forecasting techniques, which may improve resource management and disaster preparedness.

Abstract

Abstract The El Niño‐Southern Oscillation (ENSO) significantly impacts global climate variability, causing extreme events like droughts, floods, and heatwaves. Accurate prediction of ENSO is critical for managing agriculture, water resources, disaster prevention, and economic planning. Despite advances in understanding ENSO's mechanisms and developing prediction models, forecasting its timing, intensity, and duration precisely continues to be a significant obstacle because of the nonlinear and complex characteristics of the phenomenon. In this study, we introduce a 3D‐STransformer model, with the aim of improving the accuracy and reliability of long‐term prediction by integrating multiple local and remote factors affecting ENSO dynamics, such as wind stress and upper‐ocean temperature at different depths. In addition, the model employs a multi‐head spatiotemporal attention mechanism to capture long‐range dependencies and complex interactions across time and space. We pre‐train the proposed model on the CMIP6 data set, then perform the transfer learning on the SODA data set, and finally validate the model on the GODA data set. The model employs an end‐to‐end, multistep rolling prediction strategy. It takes 12 months of input data and produces forecasts for the following 20 months. The experiment demonstrates that the model has superior performance, maintaining a high correlation in the Niño3.4 SST anomaly predictions up to 20 months ahead.

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Cite This Study

Lian et al. (2025) studied this question.

synapsesocial.com/papers/68a6fb8c5502675167ba8ac9https://doi.org/10.1029/2024jh000412
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