A case study on the application of a data-driven (XGBoost) approach on the environmental and socio-economic perspectives of agricultural groundwater management
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DOI: 10.1016/j.agwat.2025.109729
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- Zhou, Hanmi & Su, Yumin & Ma, Linshuang & Li, Jichen & Lu, Sibo & Chen, Cheng & Xiang, Youzhen & Li, Runze & Peng, Zhe & Huang, Ru, 2026. "Optimizing light gradient boosting machine with the slime mould algorithm for reference evapotranspiration estimation," Agricultural Water Management, Elsevier, vol. 324(C).
- Tian, Jiacong & Yang, Jucai & Liu, Wei & Zhang, Maoliang & Daskalopoulou, Kyriaki & Zou, Yiguang & Xu, Nuo & Liao, Zilong & Huo, Yaoqiang & Zhu, Ying & Cao, Yingnan & Xu, Sheng & Liu, Jianguo, 2025. "Assessing groundwater quality for drinking and irrigation using hydrogeochemistry and machine learning in Northern China," Agricultural Water Management, Elsevier, vol. 322(C).
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