中国农业机械化科学研究院集团有限公司 主管

北京卓众出版有限公司 主办

基于多源数据融合的苏打盐碱地变量施肥智能分级研究

Intelligent classification of variable rate fertilization for soda salt-alkali soil based on multi-source data fusion

  • 摘要: 为实现东北地区苏打盐碱地精准治理与有机肥变量施用,提出一种施肥推荐指数(FRI)驱动的多源数据融合深度学习混合模型。基于2023年生长季Sentinel-2时序遥感数据归一化植被指数(NDVI)和土壤调节植被指数(SAVI)与SoilGrids数据库土壤阳离子交换量(CEC)、pH值数据,构建FRI-CNN-MLP混合模型,实现盐碱地覆膜范围内4种施肥强度分级,利用现行标准作为专家规则生成FRI标签训练模型。预测结果表明,研究区以轻度施肥指数(占比70.53%)为主,中、重度集中于低洼边缘地带,呈外围重、中心轻格局。与基线方法对比,其总体准确率89.7%,宏平均F1分数0.85,优于传统阈值法和随机森林模型。FRI-CNN-MLP混合模型有效融合了时空−土壤特征,克服了传统阈值法主观性强、泛化性差的局限,可直接标定有机肥施用量,为盐碱地智能改良提供技术支撑。

     

    Abstract: To achieve precise management of soda saline-alkali soil in northeast China and variable rate application of organic fertilizers, a multi-source data fusion deep learning method hybrid model driven by fertilizer recommendation index(FRI)has been proposed.A FRI-CNN-MLP hybrid model was constructed by integrating 2023 growing season Sentinel-2 time-series remote sensing data, based normalized difference vegetation index(NDVI)and soil-adjusted vegetation index(SAVI)with soil cation exchange capacity(CEC)and pH data from SoilGrids database.This model has achieved four-level classification of fertilization application intensity within plastic-mulched areas of saline-alkali soil.FRI labels for model training were generated based on expert rules derived from current technical standards.Prediction results demonstrated that light fertilizer application index(accounting for 70.53%)was prodominant in study area, while moderate and heavy application were concentrated in low-lying peripheral areas, exhibiting a heavier application at periphery and lighter application at center.Compared with baseline method, model achieved an overall accuracy rate of 89.7%, and macro average F1 score of 0.85, outperforming traditional threshold method and random forest model.FRI-CNN-MLP hybrid model effectively integrates spatiotemporal-soil features, overcoming strong subjectivity and poor generalization of traditional threshold methods.It can directly determine organic fertilizer application rates, providing technical support for intelligent saline-alkali soil improvement.

     

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