YOO-GEUN HAM: Deep learning for global climate monitoring and predictions #ICBS2024
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Explore deep learning applications in global climate monitoring and predictions in this 53-minute lecture from the ICBS2024 conference. Delve into the paradigm shift in climate prediction, examining state-of-the-art deep learning models for El Niño forecasting that outperform conventional dynamical approaches. Investigate the challenges posed by limited reanalysis data and discover innovative solutions, including few-shot learning and deep learning-based data assimilation techniques. Learn how these methods significantly improve mid-range climate prediction performance and enhance ocean reanalysis accuracy by optimally blending observational data with short-term deep learning model forecasts. Gain insights into the development of nonlinear observation operators using partial convolution and recurrent generative models for sequential data assimilation.
Deep Learning for Global Climate Monitoring and Predictions