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2024

1.
Learning Extended Forecasts of Soil Water Content via Physically-Inspired Autoregressive Models

Ozmen Erkin Kokten; Raviv Raich; James Holmes; Alan Fern

Learning Extended Forecasts of Soil Water Content via Physically-Inspired Autoregressive Models Proceedings Article

In: 2024 International Conference on Machine Learning and Applications (ICMLA), pp. 400–407, 2024, (ISSN: 1946-0759).

Abstract | Links | BibTeX | Tags: autoregressive training, non-linear state-space models, Pipelines, Predictive models, Soil measurements, Soil Water Content, State-space methods, Stress, teacher-forcing, time-series, Training, Training data, Weather forecasting