[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"daily-2026-09-20":3},{"date":4,"title":5,"highlights":6,"content":12,"items":13},"2026-09-20","农业农村日报：种业振兴与AI育种双突破",[7,8,9,10,11],"中国农科院北京牧医所'广明2号'白羽肉鸡出口5国累计4.7万套，国内商品代推广16亿只、市场占有率达10%，'兽医千里眼'可提前24小时预警动物体温异常。","盐碱地国家技术创新中心发布全球首个植物抗逆AI智能体与国内首个耐盐水稻11K液相育种芯片'盐稻芯1号'，育种成本仅为全基因组重测序三分之一。","中国农科院基因组所李奎团队发布'伯乐'多智能体AI平台，以自然语言对话降低基因组育种门槛；明振华团队合作在Nature解析水杨酸受体转录调控抗病基因机理。","黑龙江黑农531入选国家育种攻关突破性大豆品种，龙粳31、黑河43分摘全国常规水稻、大豆最大推广面积；吉林智能收割机与激光除草机器人识别率超99.5%。","神农大模型3.0携36个专项智能体服务全国超10万农户，覆盖90%农业学科；中国农大校长陈卫提出科技平台与人才培养双轮驱动未来农业。","本期聚焦种业振兴与智能育种前沿：白羽肉鸡、耐盐水稻、大豆品种取得突破，植物抗逆AI智能体、'伯乐'平台、神农大模型3.0加速落地；同时关注盐碱地育种芯片、智能农机与激光除草、嘉鱼数字蔬菜溯源等产业实践，并收录节水灌溉空间优化、SIF遥感监测、抗菌药与气候变化政策等研究。\n\n---\n*本日报内容整理自公开来源，学术论文元数据来自 OpenAlex 等开放接口；外文资料已译为中文，翻译与摘要仅供参考；引用与决策请以官方原文与正式出版物为准。*",[14,47,71,98,169,209,232,253,309,334,355,375,396,420,443],{"id":15,"title":16,"url":17,"summary":18,"summary_zh":19,"content":19,"source_name":20,"source_url":19,"published_at":21,"category":22,"cover_url":19,"hotness":23,"is_selected":24,"score":25,"score_detail":26,"sources":33,"tags":35,"search_phrases":41,"slug":44,"view_count":45,"doi":19,"paper":19,"created_at":46},2970,"《农民日报》头版头条：在变革中实现超越——中国农科院北京牧医所以科技创新重塑产业竞争力","https:\u002F\u002Fszb.farmer.com.cn\u002Fnmrb\u002Fhtml\u002F2026\u002F20260919\u002F20260919_1\u002Fnmrb_20260919_13409_1_2101058054057463813.html","农民日报9-19头版头条报道中国农科院北京畜牧兽医研究所\"十四五\"时期紧扣国家战略和市场需求推进种业振兴与数智化转型：'广明2号'白羽肉鸡已出口坦桑尼亚、巴基斯坦、沙特阿拉伯等5国累计4.7万套、父母代种鸡4.2万套，国内累计推广父母代超1200万套、商品代16亿只市场占有率达10%。\"兽医千里眼\"提前24小时捕捉动物体温异常波动，富含Omega-3的鲜牛奶、虾青素营养强化鸡蛋正重新定义品质内涵。",null,"农民日报","2026-09-19T00:00:00Z","报道",10,true,94,{"impact":27,"substance":28,"depth":29,"authority":30,"freshness":23,"relevant":31,"comment":32},27,24,18,15,1,"央媒头版聚焦国家级科研机构种业振兴与数智化转型，出口数据与智能监测技术均具实质增量，值得进入每日精选。",[34],{"name":20,"url":17},[36,37,38,39,40],"种业振兴","白羽肉鸡","智慧畜牧","动物疫病监测","功能型农产品",[42,43],"北京牧医所 广明2号 白羽肉鸡","兽医千里眼 动物体温监测","北京牧医所广明2号白羽肉鸡-2970",0,"2026-09-20T00:02:59.954263Z",{"id":48,"title":49,"url":50,"summary":51,"summary_zh":19,"content":52,"source_name":53,"source_url":19,"published_at":54,"category":22,"cover_url":19,"hotness":23,"is_selected":24,"score":55,"score_detail":56,"sources":59,"tags":61,"search_phrases":66,"slug":69,"view_count":45,"doi":19,"paper":19,"created_at":70},2982,"盐碱地综合利用国家技术创新中心发布全球首个植物抗逆AI智能体与国内首个耐盐水稻11K液相育种芯片（盐稻芯1号）","https:\u002F\u002Fwww.toutiao.com\u002Farticle\u002F7687098876901212710","国家盐碱地中心9-19在总部举办新闻发布会发布两项重大科研成果：全球首个植物抗逆AI智能体聚焦盐碱、干旱、高温、低温四大非生物逆境以水稻等6个物种为研究核心，依托6个AI智能体分工完成资料检索、数据分析、交叉复核、综合研判；国内首个耐盐水稻11K液相育种芯片（盐稻芯1号）以耐盐多组学证据定向选择位点改变耐盐水稻从生育期表型鉴定向苗期基因型选择的育种变革模式，成本仅全基因组重测序三分之一。两项成果由国家盐碱地中心联合中国农业科学院深圳农业基因组研究所、崖州湾国家实验室、山东省农业科学院湿地农业与生态研究所共同研发。","## 两大科研成果重磅发布！盐碱地综合利用国家技术创新中心解锁抗逆育种智能新范式\n\n2026-09-19 12:29·[大众网东营](https:\u002F\u002Fwww.toutiao.com\u002Fc\u002Fuser\u002Ftoken\u002FMS4wLjABAAAAWwTcI7rcmoH8YQLif34dXgBEonxq4KbS8is4cb7jJBY\u002F?source=tuwen_detail)\n\n**大众网记者 唐梦琳 东营报道**\n\n9月19日，盐碱地综合利用国家技术创新中心（以下简称国家盐碱地中心）在总部举办新闻发布会，正式发布全球首个植物抗逆AI智能体与国内首个耐盐水稻11K液相育种芯片（盐稻芯1号）两项重大科研成果。发布会由中心综合事业部部长石东毅主持，中心副主任杨长军、耐盐碱植物微生物基因挖掘创新团队首席专家商连光发布。会上，杨长军介绍了成果开发背景与意义，商连光发布两项最新研究成果，并回答记者提问。\n\n![Image 1](https:\u002F\u002Fp3-sign.toutiaoimg.com\u002Ftos-cn-i-axegupay5k\u002F12aca97dece34ce8b4144483f96daca7~tplv-tt-origin-web:gif.jpeg?_iz=58558&from=article.pc_detail&lk3s=953192f4&x-expires=1790467387&x-signature=MUmUvD%2B1WCDEzZ59gn8Ck46C%2F6U%3D)\n据介绍，两项成果由国家盐碱地中心联合中国农业科学院深圳农业基因组研究所、崖州湾国家实验室、山东省农业科学院湿地农业与生态研究所共同研发，以人工智能与分子育种技术深度融合，破解作物抗逆选育难题，为盐碱地综合利用、种业振兴和国家粮食安全注入强劲科技动能。\n\n植物抗逆AI智能体聚焦盐碱、干旱、高温、低温四大非生物逆境，以水稻等6个物种为研究核心，整合全球逆境文献与多源科研数据，依托6个AI 智能体分工完成资料检索、数据分析、交叉复核、综合研判，能够持续迭代学习科研成果，实现从单一胁迫研究向多逆境耦合研究范式升级。植物抗逆AI智能体可智能挖掘抗逆关键基因、显著压缩分子育种研发周期，作物抗逆上研究性能优于通用科研大模型，并将面向全球科研用户开放共享。\n\n与通用芯片按基因组位置均匀布点不同，耐盐水稻11K液相育种芯片（盐稻芯1号）以耐盐多组学证据定向选择位点，改变了耐盐水稻从生育期表型鉴定向苗期基因型选择的育种变革模式。相较全基因组重测序，该芯片成本仅为其三分之一，核心耐盐表型上，预测精度较同类芯片明显提升，育种科研人员可在苗期完成大规模群体耐盐筛选，为解决水稻耐盐研究中生育期和土地条件制约等问题提供了新的途径。\n\n两项成果取得了五个主要显著进展：一是推动研究范式由单一胁迫走向多逆境耦合；二是育种模式由经验筛选转向数据驱动精准选育；三是科研组织由分散探索升级为 AI 智能协同研究；四是芯片标记由全基因组铺点升级为多组学定向锚定；五是利用芯片将育种选择由大田表型鉴定前移至苗期基因型筛选。\n\n下一步，国家盐碱地中心将持续迭代升级植物抗逆AI智能体，丰富多物种、多场景科研数据集，优化算法模型；打通基础研究到育种应用链条，加速抗逆基因挖掘、种质创制和新品种选育；搭建全球逆境科研协同创新网络，深化与FAO、INSAS等国际组织交流合作，汇聚各方科研力量，联合破解植物逆境响应、气候适应性育种、边际土地高效利用等重大科学问题。\n\n发布会现场还介绍了国家盐碱地中心平台建设、人才集聚、科研攻关、成果转化等方面最新建设成效。","大众网·今日头条","2026-09-19T04:29:00Z",92,{"impact":27,"substance":28,"depth":29,"authority":57,"freshness":23,"relevant":31,"comment":58},13,"国家级科研机构发布全球首个植物抗逆AI智能体与国内首个耐盐水稻育种芯片，属种业与农业AI领域重大突破，信息增量与时效性俱佳，值得进入每日精选。",[60],{"name":53,"url":50},[62,63,36,64,65],"农业人工智能","盐碱地利用","育种芯片","耐盐水稻",[67,68],"盐碱地国家技术创新中心 植物抗逆AI智能体","耐盐水稻 盐稻芯1号 液相育种芯片","盐碱地国家技术创新中心植物抗逆AI智能体-2982","2026-09-20T00:03:02.715667Z",{"id":72,"title":73,"url":74,"summary":75,"summary_zh":19,"content":76,"source_name":77,"source_url":19,"published_at":21,"category":22,"cover_url":19,"hotness":23,"is_selected":24,"score":78,"score_detail":79,"sources":85,"tags":87,"search_phrases":93,"slug":96,"view_count":45,"doi":19,"paper":19,"created_at":97},2983,"中国农科院基因组所明振华团队合作发文Nature 解析SA诱导受体转录调控抗病基因机理","https:\u002F\u002Fnews.gxu.edu.cn\u002Finfo\u002F1002\u002F44168.htm","广西大学明振华教授团队与中国农科院深圳农业基因组研究所、四川大学、加拿大英属哥伦比亚大学等单位合作在Nature正刊发表论文\"Mechanisms of transcriptional regulation by salicylic acid receptors\"。研究发现SA结合诱导NPR1与Mediator复合体成员MED15A的KIX结构域相互作用有效招募RNA聚合酶II激活抗病基因转录；NIMIN1介导NPR3\u002F4与TPL形成转录抑制复合体沉默抗病基因表达，SA结合可抑制NPR3\u002F4与NIMIN1的相互作用从而解除对抗病基因转录的抑制。","近日，我校生命科学与技术学院明振华教授团队与四川大学、中国农业科学院深圳农业基因组研究所、加拿大英属哥伦比亚大学等单位合作完成的研究论文**_“Mechanisms of transcriptional regulation by salicylic acid receptors”_**发表于**_Nature_**正刊上。明振华为论文第二作者，广西大学为第三完成单位。该研究中，我校团队主要负责解析SA诱导受体与转录调控蛋白相互作用的结构机理。\n\n![Image 1](https:\u002F\u002Fnews.gxu.edu.cn\u002F__local\u002FC\u002FE5\u002F96\u002F45AD223A6200A41CD0F1CDFDA13_8A66F6E7_FB8A.png)\n\n在病原菌侵染过程中，植物通过大量合成SA来激活抗病相关基因的表达，从而建立病原菌抗性。SA可以结合NPR1和NPR3\u002F4两类受体，其中NPR1正调控抗病基因的转录，NPR3\u002F4则负调控抗病基因的转录。然而，SA如何差异调控这两类受体以实现抗病基因的精确转录，此前尚不清楚。\n\n该研究围绕上述科学问题取得了两项关键发现。研究发现SA的结合可以诱导NPR1与Mediator复合体成员MED15A的KIX结构域相互作用，进而有效招募RNA聚合酶II，激活抗病基因转录。破坏NPR1-MED15A的相互作用界面会导致SA无法正常激活抗病基因表达，最终削弱植物抗病性。研究进一步发现NIMIN1蛋白可以介导NPR3\u002F4与TPL形成转录抑制复合体，沉默抗病基因的表达。SA的结合可以抑制NPR3\u002F4与NIMIN1的相互作用，从而解除NPR3\u002F4对抗病基因转录的抑制。该研究系统解析了SA通过结合NPR受体调控植物抗病基因表达的作用机理，为改良SA信号通路、提升作物抗病性提供了重要的理论依据。\n\n该研究是我校生命科学与技术学院结构生物学团队继2026年8月在**_Nature Plants_**发表相关成果（明振华为共同通讯作者，广西大学为共同通讯单位）后，在植物信号研究领域合作取得的又一重要进展。\n\n![Image 2](https:\u002F\u002Fnews.gxu.edu.cn\u002F__local\u002F7\u002FA0\u002F1F\u002FD5A7A361B89C66B377AC5D78A92_9072CE02_1FE1F.png)","广西大学新闻中心",90,{"impact":80,"substance":81,"depth":82,"authority":57,"freshness":83,"relevant":31,"comment":84},26,23,19,9,"Nature正刊解析SA受体调控抗病基因的结构机理，属植物抗病领域重大突破，对改良作物抗病性有直接理论价值。",[86],{"name":77,"url":74},[88,89,90,91,92],"植物抗病","水杨酸信号","结构生物学","作物抗病育种","基因转录调控",[94,95],"中国农科院基因组所 明振华 Nature","水杨酸受体 NPR1 抗病基因","中国农科院基因组所明振华Nature-2983","2026-09-20T00:03:02.930060Z",{"id":99,"title":100,"url":101,"summary":102,"summary_zh":103,"content":19,"source_name":104,"source_url":101,"published_at":105,"category":106,"cover_url":19,"hotness":23,"is_selected":24,"score":107,"score_detail":108,"sources":111,"tags":113,"search_phrases":119,"slug":122,"view_count":45,"doi":123,"paper":124,"created_at":168},2912,"Spatial optimization of water-saving irrigation in Chinese rice paddies: Balancing yield, greenhouse gases, and cost using NSGA-II","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.agsy.2026.104976","CONTEXT Optimizing the spatial allocation of water-saving irrigation (WSI) promotion is critical for balancing rice production, greenhouse gas (GHG) mitigation, and economic costs, yet remains challenging at a national scale due to computational intractability. OBJECTIVE This study aims to develop a spatially explicit optimization framework to identify WSI promotion pathways across China's rice paddies that simultaneously maximize yield gain, maximize GHG reduction, and minimize implementation cost. METHODS We coupled K-means clustering with a multi-objective evolutionary algorithm (NSGA-II). Based on machine-learning predicted yield and GHG emissions for 157,417 flooded irrigation grids, we first clustered these grids into 500 environmentally and agronomically homogeneous groups. We then formulated a continuous optimization problem with cluster-level conversion rates as decision variables, simultaneously maximizing national yield gain, maximizing GHG reduction, and minimizing implementation cost. RESULTS AND CONCLUSIONS The Pareto front comprised 100 non-dominated solutions spanning promotion rates from 61.8% to 80.3%. The optimal solution, selected by normalized scoring, achieved 6.47 Mt. yield gain and 63.5 Mt. CO 2 e GHG reduction at a cost of 10.14 billion CNY, corresponding to a national promotion rate of 80.3%. Cluster-scale conversion rates exhibited significant spatial heterogeneity and positive correlation with cluster size ( r = 0.23), revealing economies of scale in WSI promotion. Compared with a random promotion strategy at 90% adoption, our optimized solution delivered 74% higher yield gain with 9.7 percentage points lower promotion effort while achieving comparable GHG reduction. SIGNIFICANCE Our framework provides a spatially explicit decision-support tool for precision agricultural policy, demonstrating that smart spatial allocation can substantially enhance the efficiency of limited resources in scaling climate-smart agricultural practices.","背景 优化节水灌溉（WSI）推广的空间配置对于平衡水稻生产、温室气体（GHG）减排和经济成本至关重要，但由于计算上的不可处理性，在全国尺度上仍具挑战性。目的 本研究旨在开发一个空间显式优化框架，以识别中国稻田的WSI推广路径，同时最大化产量增益、最大化GHG减排并最小化实施成本。方法 我们将K-means聚类与多目标进化算法（NSGA-II）相结合。基于机器学习预测的157,417个淹水灌溉网格的产量和GHG排放，我们首先将这些网格聚类为500个在环境和农艺上同质的组。然后，我们构建了一个以组级转换率为决策变量的连续优化问题，同时最大化全国产量增益、最大化GHG减排并最小化实施成本。结果与结论 Pareto前沿包含100个非支配解，推广率从61.8%到80.3%不等。通过归一化评分选出的最优解实现了6.47 Mt的产量增益和63.5 Mt CO₂e的GHG减排，成本为101.4亿元人民币，对应全国推广率为80.3%。组尺度转换率表现出显著的空间异质性，并与组规模呈正相关（r = 0.23），揭示了WSI推广中的规模经济。与90%采纳率的随机推广策略相比，我们的优化方案在推广力度低9.7个百分点的情况下实现了高出74%的产量增益，同时实现了相当的GHG减排。意义 我们的框架为精准农业政策提供了一个空间显式的决策支持工具，表明智能空间配置可以显著提高有限资源在推广气候智慧型农业实践中的效率。","Agricultural Systems","2026-09-18T00:00:00Z","论文",89,{"impact":28,"substance":81,"depth":82,"authority":109,"freshness":83,"relevant":31,"comment":110},14,"基于NSGA-II的全国稻田节水灌溉空间优化框架，数据规模大、结论具体，对气候智慧型农业政策有决策参考价值。",[112],{"name":104,"url":101},[114,115,116,117,118],"智慧农业","水稻","空间优化","节水灌溉","农业减排",[120,121],"中国稻田 节水灌溉 空间优化","NSGA-II 水稻 温室气体 减排","中国稻田节水灌溉空间优化-2912","10.1016\u002Fj.agsy.2026.104976",{"doi":123,"openalex_id":125,"authors":126,"venue":104,"cited_by_count":45,"oa_url":101,"card":161,"direction":165,"ingested_from":167},"W7213551595",[127,129,132,135,137,139,141,143,146,148,151,154,157,159],{"name":128,"orcid":19},"Qiang Xu",{"name":130,"orcid":131},"Fan Yao","https:\u002F\u002Forcid.org\u002F0000-0002-4393-7296",{"name":133,"orcid":134},"Dan Wei","https:\u002F\u002Forcid.org\u002F0000-0003-4401-567X",{"name":136,"orcid":19},"Hui Gao",{"name":138,"orcid":19},"Min Jiang",{"name":140,"orcid":19},"Wenya Chen",{"name":142,"orcid":19},"Yourui Cao",{"name":144,"orcid":145},"Peng Zhang","https:\u002F\u002Forcid.org\u002F0000-0002-3036-1507",{"name":147,"orcid":19},"A. I. Abdo",{"name":149,"orcid":150},"Liujun Xiao","https:\u002F\u002Forcid.org\u002F0000-0002-1900-1586",{"name":152,"orcid":153},"Hao Liang","https:\u002F\u002Forcid.org\u002F0000-0002-9955-6492",{"name":155,"orcid":156},"Xiaoqing Cui","https:\u002F\u002Forcid.org\u002F0000-0002-1970-5145",{"name":158,"orcid":19},"Xia Liang",{"name":160,"orcid":19},"Huiqing Bai",{"tldr":162,"method":163,"finding":164,"direction":165,"opportunity":166},"构建空间优化框架，为中国稻田节水灌溉推广寻找兼顾产量、温室气体与成本的路径。","耦合K-means聚类与NSGA-II多目标进化算法，基于15.7万网格的机器学","最优方案增产6.47 Mt、减排63.5 Mt CO2e，成本101.4亿元，推广率80.3%，存在","农业绿色发展与碳","可将该空间优化框架扩展到其他气候智慧型农业技术，并耦合农户采纳行为与政策激励。","openalex","2026-09-19T23:30:05.508592Z",{"id":170,"title":171,"url":172,"summary":173,"summary_zh":174,"content":19,"source_name":175,"source_url":172,"published_at":176,"category":106,"cover_url":19,"hotness":23,"is_selected":177,"score":178,"score_detail":179,"sources":182,"tags":184,"search_phrases":189,"slug":192,"view_count":45,"doi":193,"paper":194,"created_at":208},2952,"Direct quantification of solar-induced chlorophyll fluorescence using compact solar-blind optical radiometers","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rse.2026.115669","Remote sensing of solar-induced chlorophyll fluorescence (SIF) provides a non-invasive, quantitative measure related to plant photosynthetic activity, linking leaf-level physiology to canopy and ecosystem behavior and the global carbon cycle. Current SIF measurements rely on hyperspectral retrievals of the weak fluorescence signal from small changes in Fraunhofer lines or atmospheric absorption features in plant or canopy reflectance spectra. Because this approach is dependent on atmospheric and illumination conditions, it relies on bulky and costly instrumentation, while complex retrieval algorithms demand atmospheric spectroscopy expertise. These limitations restrict widespread proximal SIF remote sensing applications, and contribute to critical observational gaps, highlighting the need for a simplified measurement approach. We introduce a fundamentally different approach to proximal SIF remote sensing: a solar-blind radiometer (SBR) fully resolves a saturated atmospheric O 2 line (ca. 0.01 nm spectral width). Inside this line, SIF is the only natural light source and thus can be measured directly. Calculations show that SBR-SIF instruments can be implemented using a Fabry-Pérot interferometer in double-pass configuration. Plant measurements with our prototype confirm the theoretical calculations and provide direct SIF measurements with a precision of 0.1 mW m -2 sr -1 nm -1 in 3 min, similar or higher than conventional techniques. SBR-SIF is independent of atmospheric and illumination conditions, requires no spectral retrieval or reference measurement, and enables compact, field-deployable instrumentation. Consequently, SBR-SIF enables scalable proximal SIF measurements that can advance our understanding of physiological processes, support validation of satellite observations, and expand SIF applications in ecosystem monitoring and precision agriculture.","太阳诱导叶绿素荧光(SIF)的遥感提供了一种与植物光合活动相关的非侵入式定量测量手段，将叶片尺度的生理过程与冠层和生态系统行为及全球碳循环联系起来。当前的SIF测量依赖于对植物或冠层反射光谱中夫琅禾费线或大气吸收特征微小变化所对应的微弱荧光信号进行高光谱反演。由于该方法依赖于大气和光照条件，需要笨重且昂贵的仪器设备，同时复杂的反演算法要求大气光谱学专业知识。这些局限性限制了近端SIF遥感应用的广泛开展，并造成了关键的观测空白，凸显了发展简化测量方法的必要性。我们提出了一种全新的近端SIF遥感方法：太阳盲辐射计(SBR)能够完全分辨一条饱和的大气O₂吸收线(光谱宽度约0.01 nm)。在该吸收线内，SIF是唯一的自然光源，因此可以被直接测量。计算表明，SBR-SIF仪器可采用双程配置的法布里-珀罗干涉仪实现。使用我们的原型样机进行的植物测量证实了理论计算结果，可在3分钟内提供精度为0.1 mW m⁻² sr⁻¹ nm⁻¹的直接SIF测量，与传统技术相当或更高。SBR-SIF不受大气和光照条件影响，无需光谱反演或参考测量，可实现紧凑、可野外部署的仪器化测量。因此，SBR-SIF能够实现可扩展的近端SIF测量，有望推进我们对生理过程的理解，支持卫星观测的验证，并拓展SIF在生态系统监测和精准农业中的应用。","Remote Sensing of Environment","2026-09-17T00:00:00Z",false,88,{"impact":180,"substance":81,"depth":82,"authority":30,"freshness":83,"relevant":31,"comment":181},22,"提出日盲辐射计直接测量SIF的新方法，摆脱大气与光照条件依赖，实现紧凑可野外部署的仪器，对作物光合监测与卫星验证有实质推动。",[183],{"name":175,"url":172},[114,185,186,187,188],"遥感","作物监测","光合作用","叶绿素荧光",[190,191],"太阳诱导叶绿素荧光 遥感 仪器","SIF 日盲辐射计 作物监测","太阳诱导叶绿素荧光遥感仪器-2952","10.1016\u002Fj.rse.2026.115669",{"doi":193,"openalex_id":195,"authors":196,"venue":175,"cited_by_count":45,"oa_url":172,"card":202,"direction":206,"ingested_from":167},"W7213500066",[197,199],{"name":198,"orcid":19},"Jonas Kuhn",{"name":200,"orcid":201},"J. Stutz","https:\u002F\u002Forcid.org\u002F0000-0001-6368-7629",{"tldr":203,"method":204,"finding":205,"direction":206,"opportunity":207},"提出太阳盲辐射计直接测量太阳诱导叶绿素荧光，无需光谱反演。","利用法布里-珀罗干涉仪双通配置，全分辨大气氧吸收线，原型实测植物。","原型3分钟精度达0.1 mW m⁻² sr⁻¹ nm⁻¹，且不受大气和光照条件影响。","农业遥感与作物表型","可开发低成本便携SIF传感器，用于田间作物光合表型与卫星验证。","2026-09-19T23:30:34.736522Z",{"id":210,"title":211,"url":212,"summary":213,"summary_zh":19,"content":214,"source_name":215,"source_url":19,"published_at":21,"category":22,"cover_url":19,"hotness":23,"is_selected":24,"score":216,"score_detail":217,"sources":220,"tags":222,"search_phrases":227,"slug":230,"view_count":45,"doi":19,"paper":19,"created_at":231},2992,"黑龙江省农科院黑农531入选国家育种攻关突破性品种 3水稻3大豆跻身全国推广面积前十","https:\u002F\u002Fwww.haas.cn\u002Finfo\u002F1231\u002F336061.htm","第二十三届全国种子信息交流与产品交易会传来喜讯，黑龙江省农科院选育的黑农531成功入选\"十四五\"国家农作物育种联合攻关成果突破性品种选育类名录（全国大豆突破性品种仅4项）。该院选育的龙粳31、绥粳27、绥粳309等3个水稻品种，黑河43、黑农531、黑农84等3个大豆品种跻身全国常规水稻、大豆推广面积前十；龙粳31、黑河43再度摘得对应品类全国最大推广面积。目前该院育成品种应用面积约占全省播种面积的43%，水稻自育品种覆盖率70%左右、大豆自育品种覆盖率超50%。","[![Image 3](https:\u002F\u002Fwww.haas.cn\u002Fimages\u002Flogo.png)](https:\u002F\u002Fwww.haas.cn\u002Findex.htm \"黑龙江省农业科学院\")\n\n*   [](javascript:;)\n*   [OA办公系统](https:\u002F\u002Fhljsnykxyoa.com:5000\u002Fseeyon\u002Findex.jsp)\n*   [邮箱系统](https:\u002F\u002Fexmail.qq.com\u002Flogin)\n\n*   ### [首页](https:\u002F\u002Fwww.haas.cn\u002Findex.htm \"首页\")\n*   ### [院情概况](https:\u002F\u002Fwww.haas.cn\u002Fyqgk\u002Fyqjj.htm \"院情概况\")[院情简介](https:\u002F\u002Fwww.haas.cn\u002Fyqgk\u002Fyqjj.htm \"院情简介\")[历任领导](https:\u002F\u002Fwww.haas.cn\u002Fyqgk\u002Flrld.htm \"历任领导\")[现任领导](https:\u002F\u002Fwww.haas.cn\u002Fyqgk\u002Fxrld.htm 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8](https:\u002F\u002Fwww.haas.cn\u002F__local\u002FA\u002F03\u002FD7\u002F2163B5FBC131A7FC04BB95DCAD6_8D8634C8_AC96.png)\n\n![Image 9](https:\u002F\u002Fwww.haas.cn\u002F__local\u002F7\u002F60\u002FD0\u002FF9B244ABC97D7387CEB7249F223_76BD5CD2_F72C.png)\n\n上一篇：[2026年黑龙江省高素质农民培育农产品质量安全管控与农兽药残留胶体金快速检测专题培训班在哈尔滨开班](https:\u002F\u002Fwww.haas.cn\u002Finfo\u002F1231\u002F336071.htm)\n\n下一篇：[黑龙江省农业科学院召开树立和践行正确政绩观学习教育总结会议](https:\u002F\u002Fwww.haas.cn\u002Finfo\u002F1231\u002F335911.htm)\n\n[![Image 10](https:\u002F\u002Fwww.haas.cn\u002Fimages\u002Flogo.png)](https:\u002F\u002Fwww.haas.cn\u002Findex.htm)\n\n*   ![Image 11](https:\u002F\u002Fwww.haas.cn\u002Fimages\u002Ffooter02.png) ![Image 12](https:\u002F\u002Fwww.haas.cn\u002Fimages\u002Fewm_tu.jpg) \n\n##### 友情链接\n\n*   [安徽省农业科学院](http:\u002F\u002Fwww.ahas.org.cn\u002F)\n*   [北京市农林科学院](https:\u002F\u002Fwww.baafs.net.cn\u002Findex)\n*   [福建省农业科学院](https:\u002F\u002Fwww.faas.cn\u002F)\n*   [甘肃省农业科学院](https:\u002F\u002Fwww.gsagr.cn\u002F)\n*   [广东省农业科学院](http:\u002F\u002Fwww.gdaas.cn\u002F)\n*   [广西农业科学院](http:\u002F\u002Fwww.gxaas.net\u002F)\n\n_主办单位：黑龙江省农业科学院_ _备案序号：[黑ICP备11000329号](https:\u002F\u002Fbeian.miit.gov.cn\u002F#\u002FIntegrated\u002Findex)_ _技术支持：黑龙江省农业科学院农业遥感与信息研究所_\n\n![Image 13](https:\u002F\u002Fwww.haas.cn\u002F__local\u002FE\u002FBD\u002FA9\u002FD9C00F85538C9C1DCB77E52BE15_7F0F2952_839.png?e=.png)[哈公网安备23010002004411号](https:\u002F\u002Fbeian.mps.gov.cn\u002F#\u002Fquery\u002FwebSearch)","黑龙江省农业科学院",86,{"impact":80,"substance":180,"depth":218,"authority":57,"freshness":83,"relevant":31,"comment":219},16,"国家级育种攻关突破性品种与全国推广面积前十的实质进展，权威信源且时效性强，值得进入每日精选。",[221],{"name":215,"url":212},[36,223,224,225,226],"黑龙江农科院","水稻育种","品种推广","大豆育种",[228,229],"黑农531 大豆 品种","龙粳31 黑河43 推广面积","黑农531大豆品种-2992","2026-09-20T00:03:03.695080Z",{"id":233,"title":234,"url":235,"summary":236,"summary_zh":19,"content":237,"source_name":238,"source_url":19,"published_at":105,"category":22,"cover_url":19,"hotness":23,"is_selected":24,"score":216,"score_detail":239,"sources":242,"tags":244,"search_phrases":248,"slug":251,"view_count":45,"doi":19,"paper":19,"created_at":252},2984,"中国农科院基因组所李奎团队发布\"伯乐\"多智能体AI平台 开启基因组智能育种新范式","https:\u002F\u002Fwap.sciencenet.cn\u002Fblog-3618084-1552418.html","中国农科院深圳基因组所李奎教授团队在Journal of Integrative Agriculture发表的BOLE多智能体AI平台，将原本高度依赖专业知识的复杂工程任务简化为直观的自然语言对话，显著降低技术使用门槛同时提升分析结果可重复性。BOLE已上线并免费开放使用同时支持本地化部署。论文第一作者为广东省农科院王子帅与深圳基因组所梁崇霄，研究得到国家重点研发计划、猪禽种业全国重点实验室基金等项目支持。","随着高通量基因型与表型数据的快速积累，基因组育种已进入数据密集型时代，但如何将异构的生物信息学工具有效整合为连贯的分析工作流仍是一个主要瓶颈。现有平台多依赖预定义的静态流程，要求用户具备深厚的计算遗传学与编程能力，限制了方法的实际应用与规模化推广。\n\n近期，中国农业科学院（深圳）农业基因组研究所 联合 广东省农业科学院农业生物基因研究中心、香港科技大学（广州）等单位，成功开发了基于知识驱动的多智能体AI平台——BOLE（伯乐）。该平台以“聊天对话框”式的极简交互，实现了基因组育种分析的端到端自动化。相关研究成果以“BOLE: A script-knowledge driven multi-agent framework for reproducible llm-assisted genomic breeding”为题 在**_Journal of Integrative A_****_gricultur_****_e（《农业科学学报_（英文）》，JIA）**优先在线 发表。\n\n**从“手动工程”到“自然语言对话”**\n\nBOLE的核心创新在于将基因组育种分析从传统的手动工程模式，转变为自然语言驱动的对话式操作。研究团队构建了结构化的脚本知识库，并将核心功能模块集成于统一的“聊天对话框”交互界面。在大语言模型驱动下，系统通过交互智能体、规划智能体、流程组装智能体和代码生成智能体四个专业化智能体的协同配合，自主完成从用户意图解析到最终数据分析的全流程。\n\n![Image 1: 2.png](http:\u002F\u002Fimage.sciencenet.cn\u002Fhome\u002F202609\u002F14\u002F115137p77o5o9n00bo5pon.png)\n\n图1 伯乐平台的多智能体架构\n\n**从GWAS到全基因组选择的一站式解决方案**\n\nBOLE整合了多个符合产业标准的生物信息学工具，覆盖了基因组育种分析的四大核心任务：全基因组关联分析（GWAS）、遗传力估计、种质资源评价和全基因组选择。该平台将原本高度依赖专业知识的复杂工程任务，简化为直观的自然语言对话，显著降低了技术使用门槛，同时提升了分析结果的可重复性，为人工智能技术在农业育种领域的应用探索了全新路径。\n\n目前，BOLE已上线并免费开放使用（[https:\u002F\u002Fbole.zishuailab.com\u002F](https:\u002F\u002Fbole.zishuailab.com\u002F)），同时支持本地化部署，充分保障育种数据的安全性。\n\n![Image 2: 1.png](http:\u002F\u002Fimage.sciencenet.cn\u002Fhome\u002F202609\u002F14\u002F115124le0bibyslbru320w.png)\n\n图2 伯乐核心功能示意图\n\n论文第一作者：王子帅（广东省农业科学院农业生物基因研究中心）、梁崇霄（中国农业科学院深圳基因组所）\n\n通讯作者：李奎教授（中国农业科学院深圳基因组所）\n\n本研究得到国家重点研发计划、猪禽种业全国重点实验室基金、深圳市优秀人才培养基金和广东省基金等项目支持。\n\nCite the article:\n\nZishuai Wang, Chongxiao Liang, Yanlin Zhang, Rong Zhou, Xiaoai Zhang, Wenkang Wei, Kui Li. 2026. BOLE: A script-knowledge driven multi-agent framework for reproducible llm-assisted genomic breeding.Journal of Integrative Agriculture, Doi:10.1016\u002Fj.jia.2026.07.011\n\n[https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jia.2026.07.011](https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jia.2026.07.011)\n\n_Journal of Integrative Agriculture_（《农 业科学学报（英文）》, JIA）由中华人民共和国农业农村部主管，中国农业科学院与中国农学会主办，中国农业科学院农业信息研究所承办。综合性英文学术期刊，月刊。创刊于2002年，现任主编为中国科学院院士陈化兰。JIA主要栏目有作物科学、园艺、植物保护、动物科学、动物医学、农业生态环境、食品科学、农业经济与管理等。刊稿类型有综述、研究论文、简报以及评述等。全部论文在Elsevier-ScienceDirect (SD) 平台OA出版。最新SCI影响因子5.7，位于SCI-JCR农业综合学科Q1区。中国科学院分区农林科学1区。2016年以来先后获得中国科协等部委 “提升计划”“登峰计划”“卓越计划”项目支持。\n\n转载本文请联系原作者获取授权，同时请注明本文来自王宁科学网博客。  \n链接地址： [https:\u002F\u002Fwap.sciencenet.cn\u002Fblog-3618084-1552418.html](https:\u002F\u002Fwap.sciencenet.cn\u002Fblog-3618084-1552418.html)\n\n上一篇：[JIA | 四川农业大学小麦研究所马建教授课题组鉴定并遗传解析一个新的小麦粒长位点](https:\u002F\u002Fblog.sciencenet.cn\u002Fblog-3618084-1552417.html)  \n下一篇：[JIA优先上线｜多单位联合综述从“传统棉作”到“智能设计”：中国棉花产业十年的跃迁](https:\u002F\u002Fblog.sciencenet.cn\u002Fblog-3618084-1552981.html)\n\n[欢迎参加科学网十佳博文评选活动！](https:\u002F\u002Fblog.sciencenet.cn\u002Fblog-45-1520553.html)\n\n主办单位： [![Image 3](https:\u002F\u002Fimage.sciencenet.cn\u002Fhome\u002F202606\u002F03\u002F170346g6h6jzlddzxnvgk1.jpg)](https:\u002F\u002Fwww.sciencenet.cn\u002F)支持单位：[![Image 4](https:\u002F\u002Fimage.sciencenet.cn\u002Fhome\u002F202606\u002F04\u002F150033i1jb7dpbv12pbsbs.jpg)](https:\u002F\u002Fais.cn\u002Fu\u002FQnia6z)","科学网博客",{"impact":28,"substance":180,"depth":29,"authority":109,"freshness":240,"relevant":31,"comment":241},8,"国家级科研机构发布的多智能体AI育种平台，方法新颖、开放可用，对智慧育种有实质推动，值得进入每日精选。",[243],{"name":238,"url":235},[62,36,245,246,247],"多智能体","智能育种","基因组选择",[249,250],"中国农科院基因组所 伯乐 育种平台","BOLE 多智能体 基因组育种","中国农科院基因组所伯乐育种平台-2984","2026-09-20T00:03:03.016540Z",{"id":254,"title":255,"url":256,"summary":257,"summary_zh":258,"content":19,"source_name":259,"source_url":256,"published_at":105,"category":106,"cover_url":19,"hotness":23,"is_selected":177,"score":260,"score_detail":261,"sources":263,"tags":265,"search_phrases":272,"slug":275,"view_count":45,"doi":276,"paper":277,"created_at":308},2917,"Confronting policy gaps between antimicrobial resistance and climate change across LMIC animal production systems","https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffsufs.2026.1831307","Background Climate change and antimicrobial resistance (AMR) represent intersecting risks to livestock and aquaculture systems, particularly in low- and middle-income countries (LMICs). Climate stressors drive increased antimicrobial reliance, while AMR undermines production resilience. Yet policy responses remain largely siloed: climate adaptation frameworks rarely address antimicrobial use, and AMR action plans give limited attention to climate-related drivers. This review assesses how national policies in LMICs integrate AMR control and climate change adaptation, identifying pathways to strengthen policy coherence. Methods A review of 204 national policy documents from 51 LMICs, sourced from the FAOLEX legal database and covering 2015–2025, was conducted. Documents were assessed using an intersectoral policy mention matrix across four integration levels: addressed in isolation, cross-referenced mentions, early integration, and full integration. Findings were complemented by 12 field- based community dialogues and site visits in the Philippines and 18 key informant interviews. Results Although regional patterns varied, most policies addressed AMR and climate change separately. Of 204 policies reviewed, 170 addressed the issues in isolation, 21 cross-referenced, and 13 showed early signs of integration; none met full integration. Even early integration was limited to specific activities and was not reflected across governance, financing, and monitoring. Common gaps included the absence of shared objectives, coordinated institutional responsibilities, and surveillance systems that jointly track climate variables, disease patterns, antimicrobial use, and resistance. The Philippine case reflected similar challenges, particularly in the absence of cross-sectoral coordination and surveillance systems, subnational implementation, and sustained financing, with the aquaculture sector remaining underrepresented. Discussion and policy implications Integration of AMR control and climate adaptation in animal production systems remain largely conceptual across LMICs. The One Health framework offers a practical institutional bridge, yet its environmental component remains underrepresented in policy and practice. Forthcoming revisions to National Action Plans on AMR, Nationally Determined Contributions, and National Adaptation Plans are timely entrypoints for aligning objectives, surveillance systems, and financing. Meaningful progress will require expanded One Health governance structures incorporating climate-AMR linkages, AMR projects within international climate finance mechanisms, and genuine engagement of local governments, communities, and private sector.","背景 气候变化和抗微生物药物耐药性（AMR）对畜牧和水产养殖系统构成交叉风险，尤其是在中低收入国家（LMICs）。气候胁迫因素推动抗微生物药物使用增加，而AMR则削弱生产韧性。然而，政策应对在很大程度上仍各自为政：气候适应框架很少涉及抗微生物药物使用，AMR行动计划对气候相关驱动因素的关注也有限。本综述评估了LMICs国家政策如何整合AMR防控与气候变化适应，并识别加强政策一致性的路径。方法 对来自51个LMICs的204份国家政策文件进行了综述，文件来源于FAOLEX法律数据库，覆盖2015—2025年。采用跨部门政策提及矩阵对文件进行评估，分为四个整合层级：孤立处理、交叉引用提及、早期整合和完全整合。研究结果还辅以在菲律宾开展的12次基于社区的对话和实地考察，以及18次关键知情人访谈。结果 尽管区域模式存在差异，但大多数政策将AMR和气候变化分开处理。在204份受审政策中，170份孤立处理这些问题，21份存在交叉引用，13份显示出早期整合迹象；没有任何政策达到完全整合。即便是早期整合也仅限于特定活动，并未体现在治理、融资和监测各层面。常见缺口包括缺乏共同目标、协调一致的机构职责，以及能够联合追踪气候变量、疾病模式、抗微生物药物使用和耐药性的监测系统。菲律宾案例反映了类似挑战，尤其是在缺乏跨部门协调和监测系统、地方层面实施和持续融资方面，水产养殖部门仍然代表性不足。讨论与政策启示 在LMICs的动物生产系统中，AMR防控与气候适应的整合在很大程度上仍停留在概念层面。“同一健康”框架提供了实际的制度桥梁，但其环境组成部分在政策和实践中仍然代表性不足。即将开展的AMR国家行动计划、《国家自主贡献》和国家适应计划的修订，是协调目标、监测系统和融资的及时切入点。要取得实质性进展，需要扩大“同一健康”治","Frontiers in Sustainable Food Systems",85,{"impact":180,"substance":81,"depth":82,"authority":57,"freshness":240,"relevant":31,"comment":262},"基于51个中低收入国家204份政策文件的实证综述，揭示气候适应与抗菌药物耐药治理的政策割裂，对畜牧与水产养殖系统具有较强政策参考价值。",[264],{"name":259,"url":256},[266,267,268,269,270,271],"水产养殖","气候变化","畜牧养殖","政策协同","One Health","抗菌药物耐药性",[273,274],"LMIC 畜牧 抗菌药物耐药性 气候政策","FAOLEX 国家政策 抗菌药物 气候变化","LMIC畜牧抗菌药物耐药性气候政策-2917","10.3389\u002Ffsufs.2026.1831307",{"doi":276,"openalex_id":278,"authors":279,"venue":259,"cited_by_count":45,"oa_url":256,"card":303,"direction":165,"ingested_from":167},"W7213549810",[280,282,284,287,289,292,294,297,299,301],{"name":281,"orcid":19},"Percival Ethan Lao",{"name":283,"orcid":19},"Noelle Anne Cubacub",{"name":285,"orcid":286},"Kristina Osbjer","https:\u002F\u002Forcid.org\u002F0000-0002-0902-8232",{"name":288,"orcid":19},"Sunday Ochai",{"name":290,"orcid":291},"Cèlia Ventura-Gabarró","https:\u002F\u002Forcid.org\u002F0000-0002-4937-3874",{"name":293,"orcid":19},"Sophie Caroline Fridman",{"name":295,"orcid":296},"Mohammed Dahiru Aminu","https:\u002F\u002Forcid.org\u002F0000-0003-1649-081X",{"name":298,"orcid":19},"Hazel Ann Fajardo",{"name":300,"orcid":19},"Arabelle Iza Barbin",{"name":302,"orcid":19},"Geminn Louis Apostol",{"tldr":304,"method":305,"finding":306,"direction":165,"opportunity":307},"综述51个中低收入国家204份政策，评估动物生产中抗微生物耐药与气候变化政策的整合程度。","审查FAOLEX 2015-2025年204份政策文件，辅以菲律宾社区对话和关键","多数政策将AMR与气候变化分开处理，无一实现完全整合，缺乏共同目标、协调责任和联合监测。","可研究One Health框架下AMR与气候政策协同监测指标及国家行动计划衔接机制。","2026-09-19T23:30:08.301375Z",{"id":310,"title":311,"url":312,"summary":313,"summary_zh":19,"content":314,"source_name":315,"source_url":19,"published_at":316,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":317,"score_detail":318,"sources":322,"tags":324,"search_phrases":329,"slug":332,"view_count":45,"doi":19,"paper":19,"created_at":333},2976,"活力中国调研行·湖北嘉鱼：科技兴农绘就荆楚丰收画卷","https:\u002F\u002Fwww.ce.cn\u002Fxwzx\u002Fgnsz\u002Fgdxw\u002F202609\u002Ft20260919_3224382.shtml","中国经济网9-19报道湖北嘉鱼县蔬菜科技示范园与中国农科院、湖北省农科院等多个科研团队合作，配套建成农业数字化服务站对蔬菜生产实施全天候监测，实时采集气象、土壤、水肥等农情信息实现水肥精准调控、病虫害绿色防控及生产全过程溯源。嘉鱼整合农作物生长数据建成400亩农产品溯源基地给蔬菜赋予\"二维码身份证\"，直供上海、广州、武汉等商超并远销日本、俄罗斯及东南亚市场。","新华社武汉9月19日电 题：科技兴农绘就荆楚丰收画卷\n\n新华社记者宋立崑、高敬、曹佩弦\n\n鱼肥鳝美，莲藕盈塘，9月的湖北，处处涌动着丰收气息。\n\n近日，记者跟随“活力中国调研行”采访团走访了解到，湖北正持续推动农业科技创新与产业创新深度融合，形成多项核心技术，培育出一批特色优质农产品，农业产业提质增效成果丰硕。\n\n在仙桃市张沟镇先锋村，记者来到仙桃市黄鳝农产品供应链有限公司的培苗间，只见蓝色培育箱整齐排布，一条条黄鳝幼苗在箱内缓缓游动。\n\n“等长到筷子长短，这些鳝苗就能分发到农户手里。”先锋村党总支书记朱传宝说，“过去村里黄鳝种苗大多依赖外地引种，养殖成本高。如今本地种苗自给率持续提升，养殖户的投入压力也减轻了。”\n\n黄鳝规模化全人工繁育，长期以来都是世界性难题。仙桃市联合湖北黄鳝产业集团、湖北省农科院组建湖北省黄鳝产业技术研究院，成功攻克这一技术瓶颈，培育的鳝苗存活率明显提升。\n\n![Image 1](http:\u002F\u002Fi.ce.cn\u002Fce\u002Fxwzx\u002Fgnsz\u002Fgdxw\u002F202609\u002FW020260919732410114462_ORIGIN.jpg)\n\n这是9月16日在仙桃市黄鳝农产品供应链有限公司拍摄的黄鳝培苗间。新华社记者鲁金博 摄\n\n与此同时，仙桃市还联合高校、科研院所研发出开口饵料、液氮速冻、自动化卤制等10余项专利技术，覆盖黄鳝养殖、冷链运输、精深加工全链条，撑起完整的本地产业体系。目前，全市黄鳝产业年产值突破120亿元。\n\n仙桃黄鳝产业的蓬勃发展，正是湖北依托农业科技创新，持续壮大特色农业产业的生动缩影。近年来，一大批农业科技成果在荆楚大地不断涌现、落地生根。ARC生物耦合技术破解花生、大豆提质固氮等难题，相关成果在湖北就地转化；科研团队在洪湖围绕煲汤、清炒、凉拌等不同烹饪场景与口感需求，培育出多个莲藕新品种并实现规模化推广种植……\n\n湖北省农业农村厅相关负责人表示，近年来，湖北持续推动农业企业与科研院校深度协同，建成一批产学研合作创新基地，累计形成专利2000余件。这些科技成果，不仅显著提升农业综合生产能力，还帮助农户化解多项风险，让乡村沃土引得来人、留得住人、能够致富。\n\n“小菜小菜，请告诉我5号地块的实时数据。”在嘉鱼县蔬菜科技示范园，湖北省农科院首席科学家邱正明站在田埂上，对着数字大屏发出指令，AI语音助手即刻播报土壤温度、湿度等田间监测数据。\n\n近年来，园区与中国农科院、湖北省农科院等多个科研团队合作，配套建成农业数字化服务站，对蔬菜生产实施全天候监测，实时采集气象、土壤、水肥等农情信息，实现水肥精准调控、病虫害绿色防控以及生产全过程溯源，有效提升田间管理效能。\n\n![Image 2](http:\u002F\u002Fi.ce.cn\u002Fce\u002Fxwzx\u002Fgnsz\u002Fgdxw\u002F202609\u002FW020260919732410241881_ORIGIN.jpg)\n\n这是9月15日在嘉鱼县潘家湾镇拍摄的农业数字化服务站显示屏。新华社记者鲁金博 摄\n\n邱正明介绍，蔬菜生长周期短，抗极端天气能力弱，暴雨内涝、高温干旱、寒潮霜冻都可能导致减产甚至绝收；部分病虫害在田间扩散速度快，若防控不及时，将给农户带来难以挽回的损失。依托这套数智化管护体系，农户能第一时间捕捉田间异常，心里更有底。\n\n有了数智基础，嘉鱼整合农作物生长数据，建成400亩农产品溯源基地，给蔬菜赋予“二维码身份证”，让好生态、好技术、好产品能被看见并验证。如今，嘉鱼蔬菜直供上海、广州、武汉等多地大型商超，还远销日本、俄罗斯及东南亚市场。\n\n“湖北既是科教大省，也是农业大省，具备以科技赋能农业的独特优势。”中国农科院农业经济与发展研究所研究员麻吉亮表示，以种苗技术攻关、新品种研发为引领，湖北大力发展智慧种植与农产品精深加工，走出了一条符合荆楚特色的现代农业发展之路。","中国经济网","2026-09-19T01:00:00Z",84,{"impact":180,"substance":319,"depth":320,"authority":30,"freshness":23,"relevant":31,"comment":321},20,17,"央媒调研报道，呈现湖北种苗攻关、数智化管护与溯源基地等实质进展，产业级参考价值较高。",[323],{"name":315,"url":312},[325,114,36,326,327,328],"数字乡村","农产品溯源","嘉鱼蔬菜","黄鳝产业",[330,331],"湖北嘉鱼 蔬菜 数字化服务站","仙桃 黄鳝 全人工繁育","湖北嘉鱼蔬菜数字化服务站-2976","2026-09-20T00:03:00.593647Z",{"id":335,"title":336,"url":337,"summary":338,"summary_zh":19,"content":339,"source_name":340,"source_url":19,"published_at":21,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":317,"score_detail":341,"sources":343,"tags":345,"search_phrases":350,"slug":353,"view_count":45,"doi":19,"paper":19,"created_at":354},2975,"新华社：智能农机打开中国田野新可能——吉林玉米地触摸屏收割机与激光除草机器人","http:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279316918\u002Fsmart-gears-open-new-possibilities-in-china-fields","新华社9-19报道吉林松源玉米收获机电子控制系统让驾驶员通过单一屏幕管理收获全过程，本土企业年销量已超2000台。第四代激光除草机器人在公主岭试验田作业，由长春理工大学联合产业伙伴研发，作物识别率超99.5%、每小时可清除5-10万株杂草，2026年底预计进入量产。\"十四五\"期间中国农作物耕种收综合机械化率达76.7%、农业无人机超30万架。","[![Image 1: China News](https:\u002F\u002Fassets.kreatio.net\u002Fnn_logos\u002Fchina-news.png)](http:\u002F\u002Fwww.chinanews.net\u002F)\n\n[![Image 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 [![Image 5: rss](https:\u002F\u002Fassets.kreatio.net\u002Fweb\u002Fnewsnet\u002Fimages\u002Frss_feed.jpg)](https:\u002F\u002Ffeeds.chinanews.net\u002Frss\u002F9366300fc9319e9b)\n*   [![Image 6: twitter](https:\u002F\u002Fassets.kreatio.net\u002Fweb\u002Fnewsnet\u002Fimages\u002Ftwitter.jpg)](https:\u002F\u002Ftwitter.com\u002FChinaNewsNet)\n\nSun, 20 Sept 2026\n\n#### [_«_ Back to Home](http:\u002F\u002Fwww.chinanews.net\u002F)\n\n![Image 7: Smart gears open new possibilities in China's fields](https:\u002F\u002Fchitra-api.kreatio.com\u002Fapi\u002Fv1\u002Fwps\u002Fdb2bc74\u002Faa68d274-a88a-4a03-a6dd-1bf1a811f75a\u002F0\u002FXxjwshE000026-20260919-CBMFN0A001-1156x770.jpg)\n\n## [Smart gears open new possibilities in China's fields](http:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279316918\u002Fsmart-gears-open-new-possibilities-in-china-fields#)\n\nXinhua   \n19 Sep 2026, 14:15 GMT+\n\nCHANGCHUN, Sept. 19 (Xinhua) -- As cornfields in northeast China's Jilin Province turn golden for the autumn harvest, bringing in the crop now requires just a few taps on a touchscreen.\n\nInside a corn harvester at Mushen Agricultural Machinery Co., Ltd. in Songyuan, a major corn-producing area, an electronic control system allows the operator to manage every stage of harvesting through a single screen.\n\n\"Ten years ago, we could sell only a few hundred machines a year. Now, our annual sales have reached more than 2,000 at their peak,\" said Wang Xincheng, general manager of the company.\n\nOver the past decade, the share of domestically produced components used in the company's harvesters has risen by about 15 percentage points to 95 percent, while advances in core components and electronic controls have helped narrow the technological gap with comparable foreign products, Wang said.\n\nSome 200 kilometers away in Gongzhuling, another machine is tackling a different field task -- without the use of chemical herbicides.\n\nAt a test field in Changchun's National Agricultural High-Tech Industry Demonstration Zone, a silver-gray, fully electric self-propelled robot glides between rows of corn. An onboard camera scans the field, an AI system distinguishes weeds from crops, and millimeter-level laser beams remove weeds without touching the corn plants.\n\nDeveloped by Changchun University of Science and Technology and its industry partners, the fourth-generation robot has a crop recognition rate of more than 99.5 percent. In field trials, it could remove 50,000 to 100,000 weeds in an hour.\n\nBy using lasers instead of herbicides, the machine provides a solution to reduce chemical usage and helps protect the fertile black soil of northeast China.\n\n\"We designed the robot around the needs of Chinese farming,\" said Wang Xiantao, a member of the research team. \"Each laser-weeding unit works like a building block, allowing the machine to be adapted for various farming scenarios.\"\n\nHe said the robot is expected to enter mass production by the end of 2026.\n\nThe changes seen in Jilin are also unfolding elsewhere in China. From touchscreen harvesters to laser-weeding robots, machines are taking on more farm work and performing it with greater precision.\n\nDuring the 14th Five-Year Plan period (2021-2025), China's comprehensive mechanization rate for crop plowing, sowing and harvesting reached 76.7 percent, with major grain crops basically achieving full-process mechanization, according to the Ministry of Agriculture and Rural Affairs.\n\nMeanwhile, more than 300,000 agricultural drones are now in use nationwide, the largest number in the world.\n\nChina's 15th Five-Year Plan (2026-2030) calls for high-quality development of agricultural machinery and closer integration of farmland, crop varieties, machinery and farming practices. A specific national plan for crop farming development released recently also calls for the development and application of high-end intelligent machinery for large-scale farmland and lighter, more efficient equipment for hilly and mountainous areas.\n\n\"Rapid advances in information technology and AI are becoming deeply integrated with agricultural production,\" said Xia Xianfei, a researcher with the Nanjing Institute of Agricultural Mechanization under the Ministry of Agriculture and Rural Affairs. Smart equipment such as drones and agricultural robots can take over labor-intensive and repetitive tasks while improving farming efficiency, Xia added.\n\nIn Jilin, where the comprehensive mechanization rate for the plowing, sowing and harvesting of major crops has reached 95 percent, research institutes, universities and manufacturers are being brought together to develop smarter agricultural equipment.\n\nIn Henan, another major corn-producing province, BeiDou navigation, 5G communications, new energy technologies and autonomous driving are being integrated into farm machinery to refine the precision and automation of field operations.\n\nIn Xinjiang, research projects launched this year are targeting unmanned cotton-field operations, intelligent sowing, precise control of water, fertilizer and pesticides, and improvements to domestically produced cotton pickers.\n\nChinese-made agricultural machinery is also reaching overseas markets.\n\nChinese cotton pickers are gaining ground in Central Asia, with manufacturers adapting their machines to local planting patterns and harvesting conditions.\n\nThe Xinjiang branch of China Railway Construction Heavy Industry Co., Ltd. delivered a new batch of cotton pickers to Central Asia in July. Orders from the region account for more than 70 percent of its production capacity this year, according to the company.\n\nFeng Guang, vice president of Xinjiang Boshiran Intelligent Agricultural Machinery Co., Ltd., said Chinese high-end cotton pickers can match leading international products in harvesting efficiency while costing about half as much as comparable European and U.S. machines.\n\nWhat is happening in Jilin, Henan, Xinjiang and many other areas reflects a broad shift in how farming is done -- toward greater precision, automation and intelligence.\n\n### [Share article:](http:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279316918\u002Fsmart-gears-open-new-possibilities-in-china-fields#)\n\n Shares \n\n![Image 8: facebook sharing button](https:\u002F\u002Fplatform-cdn.sharethis.com\u002Fimg\u002Ffacebook.svg)Share\n\n![Image 9: twitter sharing button](https:\u002F\u002Fplatform-cdn.sharethis.com\u002Fimg\u002Ftwitter.svg)Post\n\n![Image 10: reddit sharing button](https:\u002F\u002Fplatform-cdn.sharethis.com\u002Fimg\u002Freddit.svg)Share\n\n![Image 11: flipboard sharing button](https:\u002F\u002Fplatform-cdn.sharethis.com\u002Fimg\u002Fflipboard.svg)Flip\n\n![Image 12: email sharing button](https:\u002F\u002Fplatform-cdn.sharethis.com\u002Fimg\u002Femail.svg)Email\n\n[](https:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279016473\u002Fwhy-becoming-chinese-trend-is-filling-shopping-carts-worldwide)[Why BEIJING, April 28 (Xinhua) -- I'm gonna let you in on a little secret, OK? 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The AI kept circling back to something far more ordinary — and far more powerful.Blinkist Magazine | [Sponsored](http:\u002F\u002Fpopup.taboola.com\u002Fen\u002F?template=colorbox&utm_source=newsnet-chinanews&utm_medium=referral&utm_content=thumbs-feed-01:Below%20Article%20Thumbnails%20|%20Card%202:)[Sponsored](http:\u002F\u002Fpopup.taboola.com\u002Fen\u002F?template=colorbox&utm_source=newsnet-chinanews&utm_medium=referral&utm_content=thumbs-feed-01:Below%20Article%20Thumbnails%20|%20Card%202:)](https:\u002F\u002Fwww.blinkist.com\u002Fmagazine\u002Fposts\u002Fi-asked-chatgpt-what-separates-the-rich-from-everyone-else-tts-chatgpt \"I Asked AI What Rich People Do Differently. The Answer Was One Word.\")\n\nUndo\n\n[](https:\u002F\u002Fwww.blinkist.com\u002Fmagazine\u002Fposts\u002Fthe-5-hour-rule-the-quiet-habit-that-shaped-a-trillionaires-mind)[The Richest Person Alive Spends Five Hours a Week on Something Most People Quit in School It is not networking. It is not investing. 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21](https:\u002F\u002Fchitra-api.kreatio.com\u002Fapi\u002Fv1\u002Fwps\u002F5668807\u002Fce3c81b7-8b66-4dcf-b97f-db40e13252a1\u002F0\u002FXxjidwE000010-20260919-CBMFN0A001-200x200.jpg)](http:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279316676\u002Faustrian-parliament-speaker-calls-for-mutual-learning-fair-cooperation-between-europe-china)\n\n##### [Austrian parliament speaker calls for mutual learning, fair cooperation between Europe, China](http:\u002F\u002Fwww.chinanews.net\u002Fnews\u002F279316676\u002Faustrian-parliament-speaker-calls-for-mutual-learning-fair-cooperation-between","新华社·中国新闻网",{"impact":28,"substance":319,"depth":218,"authority":30,"freshness":83,"relevant":31,"comment":342},"央媒报道国产智能农机与激光除草机器人突破，含国产化率、识别率等硬数据，产业示范价值突出，值得入选每日精选。",[344],{"name":340,"url":337},[114,346,347,348,349],"农业机器人","智能农机","激光除草","玉米收获",[351,352],"吉林 玉米 智能收割机","长春理工大学 激光除草机器人","吉林玉米智能收割机-2975","2026-09-20T00:03:00.504266Z",{"id":356,"title":357,"url":358,"summary":359,"summary_zh":19,"content":360,"source_name":361,"source_url":19,"published_at":362,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":317,"score_detail":363,"sources":365,"tags":367,"search_phrases":370,"slug":373,"view_count":45,"doi":19,"paper":19,"created_at":374},2974,"人民日报海外版：神农大模型3.0+36个专项智能体 服务全国超10万农户","https:\u002F\u002Fnews.cau.edu.cn\u002Fmtndnew\u002Fcbf7a6637ffd4fffb20e26993670895d.htm","中国农业大学王耀君团队2023年12月发布神农大模型1.0版、2024年7月推出2.0版新增多模态识别、2025年10月升级至3.0版采用\"轻量化+多智能体\"架构同时推出36个针对具体农事问题的智能体。神农大模型已构建覆盖90%农业学科、80%农业场景的专属知识体系，核心知识库含1000万条农业知识图谱、2000万张标注图片、5000万条生产数据。辽宁杜连辉600亩玉米地使用后成本从480元\u002F亩降到不足400元\u002F亩，北京怀柔丹辉农业生菜基地育种智能体培育\"雁栖2号\"新品种。","**李晨**\n\n“近几年人工智能底层技术和应用场景发展很快，在农业上已经出现由‘人工智能+智能机械+大模型+规模化生产’集成的无人工厂、智慧农业生产方式。现在我国部分地区，这类技术已经从示范阶段转向了一些大型新型经营主体的主要生产方案。”9月16日，中国工程院院士、中国农业大学教授孙其信在2026世界农业科技创新大会（WAFI）上接受媒体采访时指出，当前全球已形成共识，未来一次重大产业变革可能以新一代人工智能技术为重要引擎，农业同样如此。人工智能引导下一轮农业生产方式变革，已经不是一个梦想，而是变成了现实。\n\n![Image 1](https:\u002F\u002Fnews.cau.edu.cn\u002Fimages\u002F2026-09\u002Fb8dbe90d2f9144beb4ace03f32463a25.jpg)\n\n孙其信接受媒体采访。中国农大供图\n\n孙其信指出，智能育种可视为第四代育种技术方向——用智能体和大模型训练，承接过去依靠育种家下地、拿尺子、记本子的部分工作。\n\n以小麦为例，中国农业大学相关团队正在研发人工智能小麦大模型。首先是积累田间数据，用无人机、地面多光谱设备记录作物从出苗到收获全过程，预计三五年后大宗粮食和畜禽的基础数据可满足智能育种模型需要。\n\n其次是积累基因数据，随着测序技术的快速发展，现在获取小麦高质量基因组信息的成本大幅降低，效率也显著提升。\n\n然后用人工智能关联田间表型与基因信息，例如输入地块表现可推测基因、输入基因可预测田间表现，从而大部分替代育种家从成千上万个体中筛选少数优良材料的工作，效率提升几十到几百倍。\n\n孙其信还提到地下根系识别。他说，根系在地下，过去育种后期才知道产量和品质，现在用新设备加人工智能算法，可测算每个品种的根系构型，设计少施肥、抗干旱、高产的根型。他对其规模化应用给出了保守判断：部分专项小模型已经起步，整体5到10年可看到大规模应用，真正在田间替代多数人工筛选还需要约5年数据积累。\n\n如今，中国农业在人工智能方面的实践越来越多的与国际接轨。孙其信介绍，去年WAFI发布中国农业大学神农大模型，盖茨基金会曾将该模型与世界一流模型对比，其在农业问题解决方案方面位居参评模型首位。\n\n中国农大团队开发了服务于非洲农业的“神农ZAO”智能体，并首先落地肯尼亚——用肯尼亚当地语言提问，模型输出适应当地农业生产的技术方案，而不是直接套用中国方案。“ZAO”在肯尼亚当地语言斯瓦西里语是种植管理的意思。\n\n孙其信说，世界需要这样一个平台，WAFI的目标不是一年开一次会，而是持续聚合全球顶尖科技资源、研发机构、投资金融机构和农业企业，产生“乘法效应”，服务中国农业发展，也服务全球农食系统绿色健康转型。\n\n[科学网2026年9月19日](https:\u002F\u002Fnews.sciencenet.cn\u002Fhtmlnews\u002F2026\u002F9\u002F571737.shtm)","中国农业大学·人民日报海外版","2026-09-18T01:00:00Z",{"impact":28,"substance":319,"depth":320,"authority":30,"freshness":240,"relevant":31,"comment":364},"院士在WAFI大会披露神农大模型3.0与智能育种进展，权威性与信息增量俱佳，值得进入每日精选。",[366],{"name":361,"url":358},[114,62,368,369,246],"农业大模型","神农大模型",[371,372],"神农大模型 智能体 农户","中国农业大学 智能育种 小麦","神农大模型智能体农户-2974","2026-09-20T00:03:00.349769Z",{"id":376,"title":377,"url":378,"summary":379,"summary_zh":19,"content":380,"source_name":381,"source_url":19,"published_at":21,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":317,"score_detail":382,"sources":384,"tags":386,"search_phrases":391,"slug":394,"view_count":45,"doi":19,"paper":19,"created_at":395},2973,"中国农业大学校长陈卫：以科技平台与人才培养双轮驱动未来农业","https:\u002F\u002Fnews.cau.edu.cn\u002Fmtndnew\u002Fb3529eeaa2a145b4995e45108ede7599.htm","中国工程院院士、中国农业大学校长陈卫9-16在WAFI 2026上接受媒体采访，把科研部署归纳为\"加大有组织开展科研\"——生物育种与粮食安全、农业绿色发展、农机装备与数字农业三大类。中国农大近年加紧布局\"神农\"等农业大模型，在智能科学与技术、低空经济与工程等方向做交叉支撑，2026级新生入学后本硕招生均保持高位，研究生推免报名超过1.6万人。","**李晨**\n\n“现代农业已不再是‘面朝黄土背朝天’的传统形态，而是以生物技术、人工智能、智能装备为支撑，以有组织科研和复合型人才培养为保障的系统工程。”9月16日，中国工程院院士、中国农业大学校长陈卫在2026世界农业科技创新大会（WAFI）上接受媒体采访时说。\n\n![Image 1](https:\u002F\u002Fnews.cau.edu.cn\u002Fimages\u002F2026-09\u002Fdd48efc31ca94ffd96f8c36da801885b.jpg)\n\n陈卫接受媒体采访。中国农大供图\n\n面对“十五五”开局与农业强国目标，陈卫把科研部署归纳为“加大有组织开展科研”。第一类是生物育种与粮食安全。他介绍，中国农大在小麦、玉米及畜禽领域布局4个全国重点实验室，并建设玉米、小麦两项生物育种产教融合创新基地；同时设生物育种、生命科学两类“强基班”，培养育种专门人才。\n\n陈卫直言，我国水稻、小麦在部分研究领域可与国际先进水平持平或领先，但玉米、大豆单产仍有差距，中国农大要把国家队作用体现在提质增产上。\n\n第二类是农业绿色发展。陈卫说，过去高产常伴随高化肥、高农药投入，带来土壤板结、残留积累等问题。中国农大成立农业绿色发展研究院，推动有机投入、低残留防控与资源循环利用，推动农业生产方式向绿色转型。与之并行的是营养健康导向——成立营养健康系，把育种目标从“增量”扩展到“提质”，让主粮、蔬菜在产量之外更重口感、营养成分与消费健康。\n\n第三类是农机装备与数字农业。他列举播种、施肥、植保、灌溉、收获全过程的大型农机、无人机、卫星遥感与人工智能应用，指出无人化机械、无人农场是现实方向而非设想。中国农大近年来加紧布局“神农”等农业大模型，并在智能科学与技术、低空经济与工程等方向做交叉支撑。“用AI做作物表型采集与筛选，用装备替代人力，用数据提高决策精度。”陈卫说。\n\n与此同时，现代农业的发展需要现代化的农业人才。陈卫介绍，2026级新生入学后，中国农大本硕招生均保持高位，其中研究生推免报名超过1.6万人。陈卫表示，农业产业形态变化——农业已走向规模化、产业化、一产二产三产融合，需要既懂生物又懂信息、既会科研又能落地的复合人才。\n\n陈卫说，中国农大重视社会服务育人发挥的重要作用。中国农大在黑龙江、吉林、河北、云南、安徽等农业优势区长期布点，通过试验站、观察站、地方研究院、科技小院和教授工作站，让把科研与人才培养一起下沉。他强调，成果转化不只发论文，还要让农民会用；人才培养不只学理论，还要在真实产区理解成本、季节、市场与政策约束。\n\n[科学网2026年9月19日](https:\u002F\u002Fnews.sciencenet.cn\u002Fhtmlnews\u002F2026\u002F9\u002F571749.shtm)","中国农业大学新闻网",{"impact":28,"substance":319,"depth":320,"authority":109,"freshness":83,"relevant":31,"comment":383},"中国农大校长在WAFI阐述有组织科研与复合型人才培养布局，涉及生物育种、绿色发展与农业大模型，信息增量与权威性俱佳，值得进入每日精选。",[385],{"name":381,"url":378},[114,62,387,388,389,390],"科技小院","生物育种","农业绿色发展","人才培养",[392,393],"中国农业大学 陈卫 未来农业","神农大模型 农业人工智能","中国农业大学陈卫未来农业-2973","2026-09-20T00:03:00.260298Z",{"id":397,"title":398,"url":399,"summary":400,"summary_zh":19,"content":401,"source_name":402,"source_url":19,"published_at":21,"category":403,"cover_url":19,"hotness":23,"is_selected":177,"score":317,"score_detail":404,"sources":407,"tags":409,"search_phrases":415,"slug":418,"view_count":45,"doi":19,"paper":19,"created_at":419},2969,"安徽省农业农村厅印发做好2026年\"三秋\"机械化生产工作的通知","https:\u002F\u002Fnews.nongji360.com\u002Fhtml\u002F2026\u002F09\u002F274328.shtml","安徽省农业农村厅9月发文部署2026年\"三秋\"机械化生产工作，要求各地强化统筹部署抓实生产组织动员、深化部门联动做好作业服务保障、加强宣传引导提升农机作业质量，落实跨区作业农机转运免费通行政策，水稻玉米单季50万亩以上县按要求开展机收损失监测调查。","**安徽省农业农村厅关于做好2026年“三秋”机械化生产工作的通知**\n\n各市农业农村局，厅属有关单位：\n\n为深入贯彻落实党中央、国务院和省委、省政府有关决策部署，认真落实全国秋粮生产和农业防灾减灾救灾视频调度会议以及《农业农村部办公厅关于做好2026年“三秋”机械化生产工作的通知》（农办机〔2026〕9号）精神，抓实抓牢“三秋”机械化生产与防灾减灾救灾工作，全力保障秋粮丰收到手、颗粒归仓，现就有关事项通知如下：\n\n一、强化统筹部署，抓实生产组织动员。秋粮占我省全年粮食产量近六成，是夺取全年粮食丰收的关键。各地要把“三秋”机械化生产摆在当前“三农”工作突出位置，提早谋划安排，细化工作举措、认真推进落实。要全面摸排机具情况、做好作业供需对接，及时开展农机操作、安全生产、机收减损、应急作业等业务培训，督促农机产销和维修企业备足易损零配件，指导农机手做好机具检修保养，保障农机具处于良好技术状态。要及时发布机具供需、作业价格、气象预警等信息，适时组织开展生产作业，科学调度农机资源，兼顾小农户以及“小散偏”地块作业需求，保障机械化生产高效有序开展。要强化农机社会化服务监管，引导农机服务主体规范诚信经营，严厉打击哄抬作业价格、粗放作业等行为，维护正常农机作业市场秩序。\n\n二、深化部门联动，做好作业服务保障。各地要健全农业农村、交通、气象、公安、石油石化等多部门协同联动机制，统筹做好各项服务保障。要落实好跨区作业农机转运免费通行政策，依规执行轻微交通违法容错免罚规定，保障农机跨区作业通行顺畅。要加强“三秋”期间气象会商研判，紧盯雨情、墒情、灾情变化，精准推送气象预警信息。要落实农机作业用油优先、优质、优价保障政策，积极推行送油下乡、送油到田便民服务，打通田间供油“最后一公里”。要公布农机作业服务保障热线，严格做好值班值守，快速受理、妥善处置农机作业过程中的难点堵点。\n\n三、加强宣传引导，提升农机作业质量。各地要加强农机作业质量标准宣贯，大力推广高效低损收获机械及配套作业技术，持续提升“三秋”机械化作业质量。要结合实际广泛开展机收减损示范推广，最大限度降低粮食收获损耗。水稻、玉米单季种植面积50万亩以上的县（市、区）和大豆单产提升整建制推进县要按要求组织开展机收损失监测调查，鼓励其他县（市、区）同步开展相关工作；各市汇总形成秋粮机收减损监测调查报告，于11月20日前报省厅农机化局。要围绕粮油作物大面积单产提升行动，科学安排秋收秋种茬口衔接，大力推广灭茬、旋耕、施肥、播种、镇压一体的复式小麦播种机和油菜条播机、移栽机等对路机具，通过现场演示、实操培训普及先进播种技术，坚持适墒、适期、适机、适量、适深播种，确保种足种满种好。\n\n四、树牢底线思维，强化应急救灾处置。各地要立足极端天气防范应对，对照《安徽省“三秋”机械化生产应急救灾工作预案》（见附件），结合各地实际细化完善实操预案。要落实防灾救灾农机储备和调用制度，摸清辖区应急农机装备底数，强化履带式联合收获机、应急烘干机、排涝水泵、抗湿播种机具储备，建强农机应急作业队伍，提前发布应急作业队伍和烘干主体信息，做好跨区支援对接。要树牢全国一盘棋思想，积极响应黄淮海地区农机应急抢收抢烘抢种作业互助协作机制。一旦发布连续阴雨气象预警或者发生农业灾情，要第一时间启动应急预案，组织力量开展排涝、抢收、抢烘、抢种，最大限度降低灾害天气带来的生产损失。\n\n五、绷紧安全之弦，抓好农机安全生产。“三秋”是农机事故高发时段，各地要压紧压实农机安全生产属地管理与部门监管责任，抓实农机安全生产全链条管控。要严把拖拉机、联合收获机注册登记、安全技术检验和驾驶证核发关口。要用好农机安全典型事故案例警示教育，切实提升农机驾驶操作人员安全防范意识，严格做到作业、维修时依规操作，严防无关人员进入作业现场引发安全事故。要深入开展农机安全隐患排查整治，联合公安等部门加大联合执法力度，发现隐患督促立行立改、闭环销号。要强化农用无人机作业监管，督促操作人员持证作业、规范操作，坚决杜绝非法改装、飞跃铁路线作业等违法违规行为。\n\n附件：安徽省“三秋”机械化生产应急救灾工作预案\n\n安徽省农业农村厅\n\n2026年9月10日\n\n附件\n\n**安徽省“三秋”机械化生产应急救灾工作预案**\n\n为充分发挥农业机械在农业抗灾救灾中的主力军作用，健全完善农业机械化生产应急管理机制，有效防范处置“三秋”期间各类突发状况，抓实做好“三秋”机械化生产与防灾减灾救灾工作，制定本预案。\n\n**一、省级应急指挥体系**\n\n省农业农村厅建立全省“三秋”机械化生产防灾减灾救灾工作组，厅分管农机化工作负责同志任组长，厅农机化局、省农机安全监理总站、省农机技术推广总站、省农机试验鉴定站为成员单位。工作组办公室设在厅农机化局，厅农机化局主要负责同志任办公室主任，负责研究会商、指挥调度、协调处置全省农机防灾减灾救灾工作。\n\n省级农机防灾减灾救灾值班电话：0551-62669128。\n\n**二、应急处置适用情形**\n\n“三秋”机械化生产期间，凡出现以下情形之一的，各级农业农村部门应当立即启动应急处置工作：\n\n（一）遭遇连续降雨、台风等灾害性天气，造成农田淹毁、田间大面积积水、农作物较大范围倒伏，或农田长时间泥泞，严重影响农业生产和机械化作业的。\n\n（二）发生农机安全伤亡事故的。\n\n（三）出现机械化生产负面舆情，扰乱正常“三秋”生产秩序、造成不良社会影响的。\n\n**三、应急处置工作指引**\n\n出现应急处置适用情形后，各级农业农村部门要第一时间向属地党委政府、上级农业农村部门报送险情灾情信息，统筹协调各方力量，联合相关部门开展协同处置，同步按需做好舆论引导、信息公开等工作。具体指引如下：\n\n（一）收获期间发生连续阴雨天气\n\n省农业农村厅农机防灾减灾救灾工作组及时推送气象灾害预警信息，强化降雨天气下抢排、抢收、抢烘、抢种工作指导、信息发布及调度指挥。指导各地引导农户、农机手抢抓有利窗口期开展抢收作业，引导农机应急作业服务队下沉一线，全力做好粮食抢收、过湿粮食烘干处置。遇紧急情况，严格依据《安徽省防灾救灾农机储备和调用制度》（皖农机函〔2024〕310号）发布农机需求，按需统筹组织跨区农机支援，保障机械化作业进度。\n\n1.农田淹毁处置。优先开展田间排涝作业，推进受损田块整治修复，清除田间冲刷遗留杂物，修复损毁田埂，填平冲蚀沟壑，尽快恢复农田基础耕作条件。优先选用履带式拖拉机牵引粉碎机清理田间作物植株残体，待田块散墒达标后，尽早开展机械化耕整地作业。针对重度淹毁、绝收田块，结合实际及时补种、改种适宜作物。\n\n2.农田积水或墒情过多处置。迅速组织开沟排涝，及时清理田间沟渠，使用排灌机械抽排排水不畅的田块积水，尽快排水降渍、透气散墒。积水消退后适时组织抢收作业，在收获窗口期时间不足情况下，立即调集履带式联合收割机开展抢收，不具备条件的可将轮式农业机械改造为半履带式或加装驱动轮胎后作业，应优先抢收低洼地块、成熟度高、易霉变的粮食。要密切跟踪气象预报，抓住降水间歇晴好时段，发动所有可用农机力量开展抢收作业，做到成熟一块、收获一块。\n\n3.收获粮食含水量过高。针对阴雨天气晾晒困难问题，要充分发挥粮食烘干中心（点）作用，引导粮食种植主体及时联系对接烘干中心（点），做好收获运输和烘干批次安排，有条件的地方尽可能推动开放公共设施场地以便于群众晾晒粮食，尽快组织好抢烘晾晒，降低发霉变质风险。根据作物品种、烘干批次、生产规模选用适宜的机具，水稻烘干可选用循环式或连续式烘干机，玉米籽粒烘干宜选用连续式烘干机。\n\n（二）收获期间发生较大面积作物倒伏\n\n大面积倒伏的农作物机械化收获应根据作物和倒伏程度选择适宜机具，调整机具作业状态，提升机手操作技能，做到应收尽收，降低损失。收获倒伏严重水稻，优先选用半喂入式谷物联合收割机顺向或侧向收获；选用全喂入机型应加装扶倒器并更换防倒伏弹齿。收获倒伏玉米优先选用割台宽度大、倾角小、分禾器尖可贴地作业的玉米收获机，也可采取加长普通玉米收获机割台分禾尖或加装扶禾装置等措施后作业。\n\n（三）秋种期间连续阴雨导致墒情过多\n\n及时疏通田间“三沟”，排除明水、降低土壤湿度，墒情不达标严禁强行下田，防止烂耕烂种。抢抓降水间歇窗口期，优先调配履带式拖拉机适配抗湿应变播种机具，湿黏地块改用浅旋作业，合理调浅播种深度、适度加大播量，播后配套机械开沟与轻镇压，同步落实机械开沟、化除、施肥等后期田管措施。对错过适播期的地块，指导开展机械化补播、改种，落实灾后田管机械化作业措施，最大限度降低灾害损失。\n\n（四）发生农机安全伤亡事故\n\n依据《农业机械事故处理办法》《安徽省农机事故应急处置预案》（皖农机函〔2026〕589号）规定执行。\n\n（五）发生机械化生产不良舆情\n\n加强舆情监测预警，第一时间组织核实，会同宣传、网信部门积极应对，及时消除不良舆情负面影响。对反映机械化生产有关困难问题的及时帮助协调解决，可根据需要适时向社会公开发布相关情况；对不实舆情要督促发布者尽快予以澄清并依法追究责任，可根据影响范围由官方采取发布通告、召开发布会等方式向社会说明。\n\n如本文内容涉及版权或真实性问题，请与本站编辑部（tougao@nongji360.com）联络。  \n 新闻热线：010-62278600\u002F62276900。责任编辑：孙雪珍。","农机360网","政策",{"impact":180,"substance":81,"depth":29,"authority":405,"freshness":83,"relevant":31,"comment":406},12,"省级“三秋”机械化生产部署文件，含应急救灾预案与机收减损监测等具体条款，政策信息增量足、时效性强，值得进入每日精选。",[408],{"name":402,"url":399},[410,411,412,413,414],"秋粮生产","三秋机械化","农机应急救灾","机收减损","农机安全生产",[416,417],"安徽 三秋 机械化生产","安徽 农机应急救灾预案","安徽三秋机械化生产-2969","2026-09-20T00:02:59.757655Z",{"id":421,"title":422,"url":423,"summary":424,"summary_zh":19,"content":425,"source_name":426,"source_url":19,"published_at":427,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":428,"score_detail":429,"sources":433,"tags":435,"search_phrases":438,"slug":441,"view_count":45,"doi":19,"paper":19,"created_at":442},2978,"活力中国调研行·华中农大洪山实验室：\"超级玉米\"蛋白超12% 2026年全国预计突破100万亩","https:\u002F\u002Fnews.youth.cn\u002Fjsxw\u002F202609\u002Ft20260916_16873086.htm","中青报9-18报道湖北洪山实验室由湖北省政府批复组建、华中农业大学牵头建设，聚焦生物育种领域服务国家粮食安全战略。华中农业大学严建兵教授团队在高蛋白玉米领域取得重大突破，培育出蛋白含量超12%的\"超级玉米\"，2026年全国种植面积预计突破100万亩，通过AI育种和基因调控技术实现\"高产、高蛋白、低氮肥\"的协同提升，能替代部分进口大豆。","【活力中国调研行】湖北“超级玉米”有望缓解我国大豆进口压力\n\n发稿时间：2026-09-16 23:22:00 来源： 中国青年报客户端\n\n[Video 4](https:\u002F\u002Fres-cyol.m.youth.cn\u002Fimage\u002Fvideo\u002F20260916\u002Fd4d45dbdd7b14edbb38c5ffadabedc98.mp4?_t=1789862722779)\nClick to unmute\n\nError occured while playing， Please close or refresh\n\ncode:4400\n\nuuid:78F35B7B-6E27-49BF-8BCE-566E352329F3\n\nrequestId(player):1CC2E66F-8304-4298-A657-C31561807883\n\nTime:2026-09-20 00:05:22\n\n提示信息\n\n9月15日，记者在参加“活力中国调研行”主题采访时来到湖北洪山实验室。该实验室由湖北省政府批复组建，华中农业大学牵头建设，聚焦生物育种领域，服务国家粮食安全战略。它与30余家企业深化合作，推动一批科技成果加速转化落地。截至 2026年9月，华中农业大学严建兵教授团队在高蛋白玉米领域取得重大突破，培育出蛋白含量超12%的“超级玉米”，2026年全国种植面积预计突破100万亩？。这项成果不仅能替代部分进口大豆，还通过AI育种和基因调控技术实现了“高产、高蛋白、低氮肥”的协同提升。（中青报·中青网见习记者 杨蕾 记者 雷宇 实习生 李婉婷）\n\n责任编辑：张毅\n\n首页|上一页 1 下一页|尾页","中国青年网","2026-09-18T13:12:00Z",83,{"impact":80,"substance":430,"depth":218,"authority":57,"freshness":431,"relevant":31,"comment":432},21,7,"央媒报道的全国性种业重大突破，蛋白含量与推广面积数据具体，AI育种与替代进口大豆的产业价值突出，值得进入每日精选。",[434],{"name":426,"url":423},[62,36,436,388,437],"粮食安全","高蛋白玉米",[439,440],"华中农业大学 高蛋白玉米 超级玉米","洪山实验室 严建兵 生物育种","华中农业大学高蛋白玉米超级玉米-2978","2026-09-20T00:03:00.760930Z",{"id":444,"title":445,"url":446,"summary":447,"summary_zh":19,"content":19,"source_name":448,"source_url":19,"published_at":449,"category":22,"cover_url":19,"hotness":23,"is_selected":177,"score":428,"score_detail":450,"sources":452,"tags":454,"search_phrases":458,"slug":461,"view_count":45,"doi":19,"paper":19,"created_at":462},2972,"2026世界农业科技创新大会（WAFI）在北京平谷开幕 6项国际成果集中发布","https:\u002F\u002Fnews.sciencenet.cn\u002Fhtmlnews\u002F2026\u002F9\u002F571737.shtm","2026世界农业科技创新大会9月17日在北京平谷开幕，以\"农食系统绿色健康转型\"为主题，来自30余个国际组织、科研机构和企业商会的近300位外宾参会，国内高校科研院所、大型企业、行业协会超200人作报告或主题演讲，总参会人数预计超1万人。大会创新发布环节集中推出6项覆盖技术方案、专家智库、国际报告的重要成果。中国农业大学教授孙其信院士在WAFI接受采访指出神农ZAO智能体已落地肯尼亚，用斯瓦希里语\"ZAO\"为农民提供适应当地农业生产的技术方案。","中国科学报·科学网","2026-09-19T02:35:00Z",{"impact":80,"substance":319,"depth":218,"authority":57,"freshness":240,"relevant":31,"comment":451},"国际性农业科技大会落地平谷并集中发布6项成果，含智能体出海肯尼亚的实质信息，具备精选价值。",[453],{"name":448,"url":446},[114,62,455,456,457],"国际合作","世界农业科技创新大会","农食系统转型",[459,460],"WAFI 北京平谷 农业科技创新大会","神农ZAO 肯尼亚 智能体","WAFI北京平谷农业科技创新大会-2972","2026-09-20T00:03:00.163181Z"]