Journal of Jilin University(Earth Science Edition) ›› 2022, Vol. 52 ›› Issue (6): 2071-2080.doi: 10.13278/j.cnki.jjuese.20210375

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FY-3B Satellite Spring Maize Leaf Area Index Inversion Based on LSTM Algorithm

Zhang Xia1, Tao Shiyu1, 2, Zhang Mao1   

  1. 1. Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 100101, China
    2. University of Chinese Academy of Sciences, Beijing 100049, China 
  • Received:2021-11-26 Online:2022-11-26 Published:2022-12-27
  • Supported by:
    the National Key R&D Program of China (2017YFC1502802), the Chinese Academy of Sciences Strategic Leading Science and Technology Project (XDA28080502) and the Special Project of Feng Yun Satellite Application Advance Program (FY-APP-2021.0302)

Abstract: The FY-3B satellite has the characteristics of a high frequency of observation and wide imaging range, which can provide long-term observation data for maize leaf area index (LAI) inversion research. Long short-term memory (LSTM) algorithm has the ability to extract temporal features from multi-period data and solve complex nonlinear problems between spectral data and LAI. The study was conducted based on   LAI and reflectance spectrum data of spring maize in Jinzhou City,Liaoning Province  measured  near the ground. To construct the LAI inversion model, the spectral response functions were used to simulate the FY-3B multi-spectral band data combined with 28 vegetation indices highly correlated with spring maize LAI. The inversion models were conducted using LSTM of different hidden layers, and the accuracies of the LSTM models were compared with the accuracy of the partial least-squares regression (PLSR) model. The results showed that the number of hidden layers greatly influences the fitting ability of the LSTM model. The three-layer LSTM model increased the LAI estimation accuracy R2 from 0.818 3 (single-layer LSTM), 0.780 0 (PLSR) to 0.869 2; correspondingly reducing the RMSE from 0.509 1,0.490 6 to 0.372 6. In short, the accuracy of the model was significantly improved.

Key words: spring maize, leaf area index, FY-3B, LSTM

CLC Number: 

  • TP751
[1] Qin Xiwen, Wang Qiangjin, Wang Xinmin, Guo Jiajing, Chu Xiao. Short-Term Prediction of PM2.5 in Beijing Based on VMDLSTM Method [J]. Journal of Jilin University(Earth Science Edition), 2022, 52(1): 214-.
[2] Wang Mingchang, Niu Xuefeng, Chen Shengbo, Wang Ya’nan, Wang Zijun. DART Model-Based Inversion of Leaf Area Index from PROBA/CHRIS Data [J]. Journal of Jilin University(Earth Science Edition), 2013, 43(3): 1033-1039.
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