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RainUNet for Super-Resolution Rain Movie Prediction under Spatio-temporal Shifts

2022-12-07 · Jinyoung Park, Minseok Son, Seungju Cho, Inyoung Lee, Changick Kim

This paper presents a solution to the Weather4cast 2022 Challenge Stage 2. The goal of the challenge is to forecast future high-resolution rainfall events obtained from ground radar using low-resolution multiband satellite images. We suggest a solution that performs data preprocessing appropriate to the challenge and then predicts rainfall movies using a novel RainUNet. RainUNet is a hierarchical U-shaped network with temporal-wise separable block (TS block) using a decoupled large kernel 3D convolution to improve the prediction performance. Various evaluation metrics show that our solution is effective compared to the baseline method. The source codes are available at https://github.com/jinyxp/Weather4cast-2022

📄 PDF Abstract BibTeX arXiv:2212.04005

Code (1)

jinyxp/weather4cast-2022 공식 구현 pytorch

Tasks

Super-Resolution

Methods 이 논문이 사용한 방법론

3D Convolution A 3D Convolution is a type of convolution where the kernel slides in 3 dimensions as opposed to 2 dimensions with 2D…
Convolution A convolution is a type of matrix operation, consisting of a kernel, a small matrix of weights, that slides over input data performing element-wise multiplication with the…

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