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climate prediction deep learning

Deep Learning Approaches for Climate Prediction Models

Open Access

Zhang, L., Smith, J., Patel, R.  ·  Nature Climate Change  ·  2023

We present a novel transformer-based architecture that achieves state-of-the-art results on multi-decadal climate forecasting benchmarks, outperforming traditional numerical models by 34%...

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Attention Mechanisms in Climate Downscaling: A Systematic Review

Kumar, A. et al. · Geophysical Research Letters · 2022

300M+ papers

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climate prediction deep learning

Deep Learning Approaches for Climate Prediction Models

Open Access

Zhang, L., Smith, J., Patel, R.  ·  Nature Climate Change  ·  2023

We present a novel transformer-based architecture that achieves state-of-the-art results on multi-decadal climate forecasting benchmarks, outperforming traditional numerical models by 34%...

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Attention Mechanisms in Climate Downscaling: A Systematic Review

Kumar, A. et al. · Geophysical Research Letters · 2022

300M+ papers
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2.1 Literature Review

The intersection of machine learning and climate science has grown substantially in recent years (Smith et al., 2021). Transformer architectures have demonstrated particular promise for capturing long-range temporal dependencies in atmospheric data (Johnson & Lee, 2022).

Subsequent work expanded on these findings by incorporating satellite imagery as auxiliary input signals (Zhang et al., 2023), achieving a 34% improvement over baseline numerical models.

References

Smith, J., et al. (2021). Neural networks in climate forecasting. Nature, 592, 45–52.

Johnson, K. & Lee, M. (2022). Attention mechanisms for temporal data. ICML 2022.

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