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cs.CV2026

RainODE: Continuous-Time Precipitation Forecasting with Latent Neural ODEs

Yeeun Seong, Doyi Kim, Minseok Seo +1

In precipitation forecasting, not only accuracy but also temporal resolution is critical. However, increasing temporal resolution is constrained by observational limitations and th…

cs.CV2026

Station2Radar: query conditioned gaussian splatting for precipitation field

Doyi Kim, Minseok Seo, Changick Kim

Precipitation forecasting relies on heterogeneous data. Weather radar is accurate, but coverage is geographically limited and costly to maintain. Weather stations provide accurate…

cs.CV2024

Data-driven Precipitation Nowcasting Using Satellite Imagery

Young-Jae Park, Doyi Kim, Minseok Seo +2

Accurate precipitation forecasting is crucial for early warnings of disasters, such as floods and landslides. Traditional forecasts rely on ground-based radar systems, which are sp…

cs.CV2024

Masked Autoregressive Model for Weather Forecasting

Doyi Kim, Minseok Seo, Hakjin Lee +1

The growing impact of global climate change amplifies the need for accurate and reliable weather forecasting. Traditional autoregressive approaches, while effective for temporal mo…

cs.CV2024

ACE Metric: Advection and Convection Evaluation for Accurate Weather Forecasting

Doyi Kim, Minseok Seo, Yeji Choi

Recently, data-driven weather forecasting methods have received significant attention for surpassing the RMSE performance of traditional NWP (Numerical Weather Prediction)-based me…

cs.CV2024

Long-Term Typhoon Trajectory Prediction: A Physics-Conditioned Approach Without Reanalysis Data

Young-Jae Park, Minseok Seo, Doyi Kim +7

In the face of escalating climate changes, typhoon intensities and their ensuing damage have surged. Accurate trajectory prediction is crucial for effective damage control. Traditi…