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April 16, 2026Remote Sensing0 citationsOpen Access

Retrieval of Atmospheric Temperature and Humidity Profiles from FY-GIIRS Hyperspectral Data Using RBF Neural Network

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SHShifeng HaoZYZhenshou YuZJZiqi Jin

Key Points

  • The study aims to retrieve atmospheric temperature and humidity profiles using hyperspectral data from the FY-GIIRS satellite.
  • Developed a retrieval method using a radial basis function neural network.
  • Integrated numerical model background profiles with GIIRS simulated radiance errors.
  • Employed a channel selection strategy focusing on sensitive temperature and humidity channels.
  • Conducted experiments with clear-sky and cloudy profiles from land stations in Zhejiang Province.
  • Achieved a 39% reduction in temperature RMSE and 22.3% in humidity RMSE under clear-sky conditions.
  • Under cloudy conditions, reduced RMSE by 38.5% for temperature and 15.3% for humidity.
  • Notable improvements in humidity retrieval were observed below 900 hPa and above 750 hPa.
  • RBF neural network outperformed multilayer perceptron methods in all conditions, especially in cloudier situations.

Abstract

Atmospheric temperature and humidity profiles are essential for numerical weather prediction and severe weather monitoring. To effectively utilize data from the Geostationary Interferometric Infrared Sounder (GIIRS) onboard the FY-4 satellite, this study proposes a retrieval method based on a radial basis function (RBF) neural network, which integrates numerical model background profiles with GIIRS simulated radiance errors to construct a mapping from these two inputs to background profile errors. A channel selection strategy is developed using correlations between background errors and radiance errors to identify channels sensitive to temperature and humidity variations at different pressure levels. Experiments are conducted using data from land stations in Zhejiang Province, China, from August to December 2024, including 829 clear-sky and 2109 cloudy profiles. Under clear-sky conditions, the method reduces temperature and humidity root mean square error (RMSE) by approximately 39% and 22.3% compared to background profiles. Under cloudy conditions, despite severe radiation interference, RMSE reductions of 38.5% for temperature and 15.3% for humidity are achieved, with notable improvements below 900 hPa and above 750 hPa for humidity. Compared with the multilayer perceptron (MLP) method, RBF shows superior performance under all test conditions, especially in cloudy-sky humidity retrieval. The proposed approach provides an effective, physically constrained framework for operational GIIRS data application in temperature and humidity retrieval.

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Cite This Study

Hao et al. (2026) studied this question.

synapsesocial.com/papers/69e07de52f7e8953b7cbee0fhttps://doi.org/10.3390/rs18081174
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