A hierarchical framework fuses a long-term intent predictor with a grid-based Spatio-Temporal Graph Transformer and environmental cross-modal attention to cut average displacement error by 25% over 10-hour horizons on Australian vessel data.
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N-BEATS outperformed other models including LSTM and TFT in forecasting time to stability on sparse KATRIN tritium monitoring data.
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Hierarchical Two-Stage Framework for Environment-Aware Long-Horizon Vessel Trajectory Prediction
A hierarchical framework fuses a long-term intent predictor with a grid-based Spatio-Temporal Graph Transformer and environmental cross-modal attention to cut average displacement error by 25% over 10-hour horizons on Australian vessel data.
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Forecasting Source Stability in Scientific Experiments using Temporal Learning Models: A Case Study from Tritium Monitoring
N-BEATS outperformed other models including LSTM and TFT in forecasting time to stability on sparse KATRIN tritium monitoring data.