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  3. Improved estimation of daily surface all-wave net radiation from FY3D MERSI-II data based on pseudo-label learning

Improved estimation of daily surface all-wave net radiation from FY3D MERSI-II data based on pseudo-label learning

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DOI
10.48620/99790
Publisher DOI
10.1080/15481603.2026.2702169
Abstract
Surface all-wave net radiation (Rn) plays a pivotal role in land–atmosphere energy exchange and redistribution, and modulates global water and heat balance and energy circulation. Although direct estimation of Rn from satellite top-of-atmosphere (TOA) observations has shown strong potential, existing methods have largely relied on single-sensor observations and sufficient training samples. This limitation has become increasingly critical as MODIS approaches the end of its mission, while the expected replacement by FY-3D MERSI-II (hereafter MERSI) still lacks enough samples for stable global model development. To address this issue, we first proposed a global Rn estimation framework based on the length ratio of daytime (LRD) for sensors providing TOA observations from the visible to thermal infrared bands. Within this framework, MODIS-only and MERSI-only models were then built separately for daily net radiation (Rn_daily) estimation; however, the MERSI-only model showed higher uncertainty due to the limited number of training samples available over a shorter period. To improve the MERSI-only model, we used the MODIS-only model to generate pseudo-labels for numerous unlabeled MERSI pseudo-site samples and combined these pseudo-labeled samples with limited ground-labeled MERSI samples to train a new model using a newly proposed progressive loss-weighting strategy, namely Dynamic Weight Adjustment Training (DWAT). Validation against Rn_daily measurements showed that the obtained DWAT model outperformed the MERSI-only model in terms of generalization, robustness, and estimation accuracy, yielding the overall validation and independentvalidation root-mean-square-error (RMSE) values of 21.68 and 23.95 W/m2, respectively. The largest improvement was found at high latitudes, with the independent-validation RMSE reduced by up to 3.36 W/m2. Moreover, the DWAT model demonstrated better predictive accuracy and strong spatial mapping ability. Overall, this approach with strong generalization capability provided a practical means to generate accurate and continuous Rn datasets based on limited available samples, and offered a scalable solution for cross-sensor remote sensing applications.
Date Issued
2026-07-26
Publication Type
Article
Author(s)
Chen, Yingping
Jiang, Bo
Li, Shaopeng  
Geographisches Institut (GIUB) - Fernerkundung  
Oeschger Centre for Climate Change Research (OCCR)  
Yin, Xiuwan
Zhao, Yu
Zhao, Xiang
Wang, Qian
Jia, Kun
Zhang, Xiaotong
Yao, Yunjun
Additional Credits
Geographisches Institut (GIUB) - Fernerkundung  
Oeschger Centre for Climate Change Research (OCCR)  
Journal
GIScience & Remote Sensing
Publisher
Taylor and Francis Group
ISSN
1548-1603
1943-7226
Access(Rights)
open.access
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