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    County level rice yield prediction model based on CNN-BiLSTM and residual attention
    LIANG Ze, CAO Shan-shan, KONG Fan-tao, SUN Wei
    HUBEI AGRICULTURAL SCIENCES    2024, 63 (8): 109-115.   DOI: 10.14088/j.cnki.issn0439-8114.2024.08.019
    Abstract215)      PDF (4099KB)(36)       Save
    A county-level rice yield prediction model (CNN-BiLSTM-RA) was proposed, which integrated convolutional neural network (CNN), bidirectional long short term memory network (BiLSTM), and residual attention (RA) mechanism, key spatial features were effectively extracted from county-level rice meteorological data through CNN layers, the dynamic changes of time series data were deeply analyzed using BiLSTM layers, and RA mechanism was introduced to enhance the recognition and capture of key features in meteorological data. Using historical rice yield and meteorological data from 81 counties in Guangxi from 2015 to 2017 as samples, the prediction accuracy and effectiveness of the CNN-BiLSTM-RA model were compared with CNN, TRANSFORMER, BiLSTM, CNN-BiLSTM, and BiLSTM-RA models. The results showed that the R2, MAE, RMSE, and MAPE of the CNN-BiLSTM-RA model were 0.986 1, 0.121 9, 0.224 8, and 0.864 8, respectively, indicating a high degree of fit between the predicted and actual values of the model. The CNN-BiLSTM-RA model fully utilized the spatial feature extraction ability of CNN, the time series data analysis advantages of BiLSTM, and the RA mechanism’s ability to enhance key feature capture. It was a new method suitable for high-precision prediction of rice yield in counties.
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    Estimation model of above-ground biomass of grassland in Tarbagatay Prefecture based on Landsat 8 and machine learning
    YANG Yan-xiao, CAO Shan-shan, LI Quan-sheng, ZHANG Xian-hua, SUN Wei
    HUBEI AGRICULTURAL SCIENCES    2024, 63 (8): 66-71.   DOI: 10.14088/j.cnki.issn0439-8114.2024.08.012
    Abstract214)      PDF (3997KB)(45)       Save
    Taking Tarbagatay Prefecture of Xinjiang as the study area, using vegetation index, meteorological data and terrain data as independent variables, combined with the measured biomass data of sample plots in the study area, five machine learning models including k-nearest neighbors regression (KNN), multiple linear regression (MLR), gradient boosting decision tree (GBDT), random forest regression (RF) and Gradient Boosting Decision Tree (GBDT) were analyzed and compared, as well as two ensemble learning models constructed using voting regressor and stacking methods. The results showed that the stacking ensemble learning model had the best performance, with R2 of 0.764, RMSE and MAE of 23.29 g/m2 and 16.8 g/m2, respectively. The optimal model was then used to invert and map above-ground biomass (AGB) of grassland.
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