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April 18, 2026Remote Sensing0 citationsOpen Access

Radar Observation Gap-Filling Technology Enhanced by Satellite Imager Measurements

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ZDZhengcao DingYLYubao LiuXWXuan Wang

Key Points

  • The aim is to develop a model that fills gaps in radar data using satellite observations to enhance weather forecasting.
  • Developed a GAN-based radar data gap-filling model named RadGF-GAN.
  • Used high-resolution outputs from a WRF-FDDA model for training and testing.
  • Simulated satellite measurements and radar data for model input.
  • Tested the model on various input combinations to evaluate performance.
  • RadGF-GAN significantly outperformed existing interpolation methods.
  • The model improved restoration of radar reflectivity spatial distribution in 3D gaps.
  • Joint input of radar and satellite data enhanced model performance compared to using them alone.
  • Satellite measurements were crucial in reconstructing rainband structures in large gaps.

Abstract

Due to complex terrain, Earth surface curvature, and limited distribution of radars, there are often serious data gaps in base radar data or in 3D radar reflectivity mosaics of a radar network. These gaps greatly limit the application of radar data in short-term severe convection forecasting and quantitative precipitation estimation for flood events. This paper develops a generative adversarial network (GAN)-based radar data gap-filling model, named RadGF-GAN, for completing gaps in 3D radar reflectivity mosaic data. The 2020–2025 high-resolution (at 1 km grid spacing) outputs of a Weather Research and Forecasting and four-dimensional data assimilation model (WRF-FDDA) in an eastern China region are used to generate the data to train and test RadGF-GAN. Observations of the geostationary satellite FY-4A 15-channel AGRI (Advanced Geostationary Radiation Imager) are simulated with the radiative transfer for TOVS (RTTOV), and the radar reflectivity data are simulated with an empirical diagnostic model. By testing on 1705 test samples for satellite-only, radar-only, and radar–satellite fused inputs, it is demonstrated that the proposed RadGF-GAN gap-filling model significantly outperforms the existing interpolation methods in restoring the spatial distribution and structural textures of the radar reflectivity in the 3D gaps. Furthermore, satellite imager measurements play a great role in reconstructing the overall rainband structures in large 3D gaps, and by jointly inputting radar and satellite data, RadGF-GAN greatly outperforms the model with either radar data or satellite data alone.

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Cite This Study

Ding et al. (2026) studied this question.

synapsesocial.com/papers/69e320e740886becb653ffbdhttps://doi.org/10.3390/rs18081205
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