聯(lián)邦學習在智慧農(nóng)業(yè)系統(tǒng)中的應(yīng)用研究綜述

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中圖分類號:S126 文獻標志碼:A 文章編號:1008-0864(2025)06-0001-15
AReviewofApplicationofFederatedLearningin Smart Agriculture Systems
TANG Minrui 1 ,HE Liang1,2*,GU Shenghao 3,4 ,YANGWanxia’,YUERuijun 1 TANY i1 ,WANGLei',F(xiàn)ENGTengfei1
(1.SchoolofComputerScienceandTechnology,XinjiangUniversity,Urumqi83o17,hina;2.BeijingNationalResearcheter forInformationScienceandTechnology,DepartmentofElectronicEngineering,Tsinghua University,Beijing1oo84,China;
3.BeijingResearchCenterforIformationTechnologyinAgriculture,BeijingKeyLaboratoryofigitalPlant,BeijingAcadeyof
AgricultureandForestrySiences,BeijingOo97,hia;4.NatioalEngineeringReseachCenterforInformationTchologin Agriculture,Beijing1O97,China;5.MechanicalandElectrical EngineringColege,Gansu Agricultural Univesity, Lanzhou 730070,China)
Abstract:As information technologyadvances,thecollction,processing,analysis andapplicationofagricultural datahave become the primary driving forceof smart agriculture.In traditional smartagricultural management systems,it is usually required to centralize agricultural data on a central server for analysis and model training, which often poses the risk of data leakage.The leakage of keyagricultural privacydataseriouslyafects the interests offarmers and agricultural institutions,so manythe farmers and institutions willcarefullyhandlethe isseof sharing originaldata.Toaddress thisissue,federated learning allowsdiferentagricultural institutions,farmsand agricultural enterprises to complete the trainingoffarming decision modelsunderthecondition ofonlysharing encryptedmodels,reducing therisk of agricultural privacydataleakage and protecting the legitimate rightsand interests of data providers.The theoretical development,technological innovation and practical application of federatedlearning technologyinthefieldofsmartagriculturewereintroduced.Basedonthedevelopment trendof smartagriculture systems,it proposed design suggestions forasmart agriculture systembased on federated learning. This paper providedreferences forresearchersand practitioners inrelated fields,ofering theoretical valueand practical guidance foradvancing agricultural data science,ensuring agricultural data security and enhancing the level of agricultural intelligence.
KeyWords:federated learning;agricultural decision-making;privacy data;smart agricultur
在信息化發(fā)展的社會背景下,智慧農(nóng)業(yè)作為農(nóng)業(yè)現(xiàn)代化的重要推力備受關(guān)注。(剩余25170字)