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Precipitation Prediction Using an Ensemble of Lightweight Learners. (arXiv:2401.09424v1 [physics.ao-ph])

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Precipitation Prediction Using an Ensemble of Lightweight Learners. (arXiv:2401.09424v1 [physics.ao-ph])

Precipitation prediction plays a crucial role in modern agriculture and industry. However, it poses significant challenges due to the diverse patterns and dynamics in time and space, as well as the scarcity of high precipitation events. To address this challenge, we propose an ensemble learning framework that leverages multiple learners to capture the diverse patterns of precipitation distribution. Specifically, the framework consists of a precipitation predictor with multiple lightweight heads (learners) and a controller that combines the outputs from these heads. The learners and the controller are separately optimized with a proposed 3-stage training scheme. By utilizing provided satellite images,

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