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Datasets/EarthNet2021

EarthNet2021

EarthNet2021: Earth Surface Forecasting

CC-BY-NC-SA 4.0Introduced 2021-04-16

Satellite images are snapshots of the Earth surface. We propose to forecast them. We frame Earth surface forecasting as the task of predicting satellite imagery conditioned on future weather. EarthNet2021 is a large dataset suitable for training deep neural networks on the task. It contains Sentinel~2 satellite imagery at 202020~m resolution, matching topography and mesoscale (1.281.281.28~km) meteorological variables packaged into 320003200032000 samples. Additionally we frame EarthNet2021 as a challenge allowing for model intercomparison. Resulting forecasts will greatly improve (>×50>\times50>×50) over the spatial resolution found in numerical models. This allows localized impacts from extreme weather to be predicted, thus supporting downstream applications such as crop yield prediction, forest health assessments or biodiversity monitoring. Find data, code, and how to participate at www.earthnet.tech.

Related Benchmarks

EarthNet2021 Extreme Track/Video/EarthNetScoreEarthNet2021 Extreme Track/Video Prediction/EarthNetScoreEarthNet2021 IID Track/Video/EarthNetScoreEarthNet2021 IID Track/Video Prediction/EarthNetScoreEarthNet2021 OOD Track/Video/EarthNetScoreEarthNet2021 OOD Track/Video Prediction/EarthNetScoreEarthNet2021 Seasonal Track/Video/EarthNetScoreEarthNet2021 Seasonal Track/Video Prediction/EarthNetScore

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Earth Surface ForecastingMultivariate Time Series ForecastingTime Series ForecastingTime Series PredictionVideo ForensicsVideo Prediction