A Bayesian Neural Network approach to study dissolved oxygen in Southern Ocean water masses
- đ¤ Speaker: Gian Giacomo Navarra, Princeton University
- đ Date & Time: Wednesday 26 March 2025, 15:30 - 16:30
- đ Venue: BAS Seminar Room 330b
Abstract
Oxygen plays a critical role in the health of marine ecosystems. As oceanic O2 concentration decreases to hypoxic levels, marine organismsâ habitability decreases rapidly. However, identifying the physical patterns driving this reduction in dissolved oxygen remains challenging. This study employs a Bayesian Neural Network (BNN) to analyze the uncertainty in dissolved oxygen forecasts. The methodâs significance lies in its ability to assess oxygen forecastsâ uncertainty with evolving physical dynamics. The BNN model outperforms traditional linear regression and persistence methods, particularly under changing climate conditions. Our approach leverages three Explainable AI (XAI) techniquesâIntegrated Gradients, Gradient SHAP , and DeepLIFTâto provide meaningful interpretations of 2- and 8-year forecasts. The XAI analysis reveals that buoyancy frequency and eddy kinetic energy is a critical predictor for short-term forecasts across the North Atlantic Deep Water (NADW), Upper Circumpolar Deep Water (UCDW), masses. While the LCDW variability emphasizes also a role played by advection processes, such as salinity, over short and long timescales.
Series This talk is part of the British Antarctic Survey - Polar Oceans seminar series series.
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Gian Giacomo Navarra, Princeton University
Wednesday 26 March 2025, 15:30-16:30