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11:52·[中国新闻网](https:\u002F\u002Fwww.toutiao.com\u002Fc\u002Fuser\u002Ftoken\u002FMS4wLjABAAAAvOdgu_VhRab2uUfrYPedveCA9KSEdd4AfYLyl9vkh2s\u002F?source=tuwen_detail)\n\n中新网福建新闻9月21日电(林永传 蔡彦婷)近日，在厦门翔安西岩山高标准农田，水稻旱作省级科技示范基地迎来丰收季。这片近郊田园依托省级科研力量，以良田为基底，融合科技试验与农文旅发展，探索走出一条“良田+良种+良技+文旅”的保粮增收新路径。\n\n![Image 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精细管护稳住秋粮长势**\n\n暑气退，秋意起。河南开封市尉氏县张市镇尹庄村的农田里，连片玉米茎秆挺拔，一些地块仍有少许积水。种粮大户蔡玉军一大早就来到地里，指挥挖掘机疏通沟渠。\n\n“今年夏粮克服连阴雨影响获得丰收，让我们很受鼓舞，秋粮自播种后就细致照管。没想到正值灌浆关键期的8月份又赶上台风和几轮暴雨，不少庄稼泡在水里。”蔡玉军说，当时很担心这一季粮食产量会被泡没了。\n\n很快，他的心踏实了下来。雨势一停，乡镇干部、农技人员就来到地里，一起挖沟渠、开泵机、清淤堵，抢抓黄金窗口期排涝护苗。\n\n蔡玉军告诉记者，因为排涝及时，目前玉米大部分长势良好，接下来要继续排查农田积水，按照农技人员指导做好雨后补肥，稳定秋粮收成。\n\n每年“七下八上”主汛期，是农业灾害高发期。记者了解到，结合今年汛期形势，农业农村部组织实施了“奋战100天强田管抗灾害夺秋粮丰收行动”，组派40多个科技小分队深入生产一线开展巡回技术服务，推动田间管理举措及时落实到位。\n\n在黑龙江省哈尔滨市双城区，针对部分地块因前期气象条件导致生长滞后问题，当地农技人员抢抓玉米灌浆黄金期，带领农户通过喷施叶面肥、生长调节剂等，加快作物灌浆速度，增强植株抗逆性，筑牢丰收根基。\n\n在四川省广安市广安区，今年6月以来花桥镇部分地区水稻严重缺水，当地政府通过提灌设施新建与改造升级、堰塘整治、气象部门人工增雨等措施全力缓解旱情影响。新楼村种粮大户熊小兰告诉记者，灌溉用水畅通了，今年自家种植的3800余亩水稻大部分能实现增产。\n\n农业农村部最新农情调度显示，目前，全国秋粮生产已进入产量形成关键期。今年秋粮面积稳中有增，其中高产作物玉米面积增加较多。虽然灾情局部影响较重，但秋粮长势整体较好。\n\n挥洒汗水，耕耘希望。从岭南阡陌到松嫩平原，从江南水乡到戈壁绿洲，南方双季晚稻正在拔节孕穗，北方玉米、水稻、大豆等进入灌浆至成熟期，各地秋粮田间管理正有序推进。\n\n**提质效 科技赋能促进稳产高产**\n\n走进山东省东营市垦利区黄河口镇牛庄新村，千亩大豆种植基地里，豆荚密密匝匝地挂满枝节。\n\n“你看这个结荚密度，分枝多、节间短，一个节上挂着三四个荚，看着就喜人。”种植大户刘新华剥开一粒豆荚，高兴地说。\n\n今年刘新华在盐碱地上种了1000多亩大豆，按目前结荚密度估算，亩产有望突破700斤。“这个数字以前根本就不敢想，就是放到普通地块都不低，更不用说在盐碱地上。”他说。\n\n刘新华家的大豆高产“密码”，就藏在一粒种子里。当地引入崖州湾国家实验室大豆种子创新团队潜心攻关的耐盐碱新品系——“国创豆78”。\n\n“多打粮还是要靠科技。”垦利区黄河口镇党委副书记、镇长陈文波说，下一步，黄河口镇将加快推广农田检测系统、智慧监测平台等新技术应用，不仅要全力夺取秋粮丰收，也要为未来继续实现优质高产筑牢根基。\n\n“深入实施种业振兴行动”“培育高产优质、抗逆广适新品种”“实施农机装备高质量发展行动”“农作物耕种收综合机械化率提高到80%以上”“培育农业科技领军企业”……“十五五”规划纲要围绕强化农业科技和装备支撑作出具体部署。\n\n行走在大江南北的田间地头，记者深刻感受到，农业科技加速融入农业生产的方方面面，各地正以良田良种良机良法集成增效提升农业综合生产能力，推动粮食生产不断迈上新台阶。\n\n“村里这几年建了高标准农田，又埋了滴灌带方便精准供水供肥，提升效率的同时也降低了成本。”吉林省长岭县青源种植农民专业合作社理事长陈占超告诉记者。\n\n长岭县地处吉林西部，过去十年九旱。近几年，吉林省加大力度建设高标准农田，在中西部粮食主产区推广“水肥一体化+密植”高产新技术，推动粮食作物单产大面积提升。青源种植农民专业合作社的400公顷土地今年全部应用了这项新技术，玉米有希望实现亩产吨粮。\n\n吉林省农业农村厅厅长刘翔宜介绍，今年汛期吉林虽然受到强降雨、台风等天气影响，但各地通过“四良”融合协同发力，全省粮食作物成灾面积占比很小，粮食产量有望实现稳中有升。\n\n为了加力单产提升，今年农业农村部组派20多个工作组赴一线指导，推动合理密植、水肥一体化、“一喷多促”等措施落地见效。\n\n据最新调度情况，东北粮食作物水肥一体化面积达到4500万亩，较去年增加500万亩；大垄密植9100万亩，增加200多万亩。南方水稻集中育秧3560万亩，增加150万亩。\n\n放眼大江南北，高标准农田累计建成超过10亿亩；抗稻飞虱水稻、耐密宜机收玉米、高油高产大豆等优良品种加快选育；越来越多的水稻高速插秧机、气吸式免耕精播机等活跃在田间地头；合理密植、水肥一体化等稳产增产关键技术带动更多农户增产增效……\n\n“十五五”开局之年，各地各部门加快发展农业新质生产力，越来越多的新品种、新设备、新技术广泛应用，正深刻地改变着农业生产的面貌，成为保障粮食安全的重要推动力。\n\n**聚合力 系统保障护航全年丰收**\n\n化肥是粮食的“粮食”。秋粮生产关键期，做好化肥等农资保供对粮食稳产增产意义重大。\n\n今年，受国际局势影响，国际化肥价格出现波动，而广西柳城县的农户心里却很踏实，不仅按时买到了秋肥，价格还比预期便宜。\n\n为保障当地约15万亩晚稻秋收生产用肥，柳城县供销合作社系统提前储备化肥约10.2万吨，依托县乡村360余家农资经营网点确保农户及时用肥需求，并针对偏远村组开展“农资下乡配送”专项服务，将种子、化肥、农药等各类农资直接送到田间地头，目前已配送农资超1000吨。\n\n记者了解到，今年夏季全国供销合作社系统加强产销对接，加大适配农资货源组织力度，依托全系统20多万个基层网点，全力保障农资及时下运到位、不误农时。\n\n秋粮生产要实现大面积丰收，还要过“秋老虎”、秋台风、早霜、病虫害等多个关口。越是关键时期，越需要各地各部门狠抓落实、全社会汇聚合力，携手共护粮安。\n\n加强资金保障，防灾减损不断档——\n\n为最大限度降低入汛以来各种极端天气对秋粮生产带来的灾害损失，财政部会同农业农村部、水利部下达农业防灾减灾和水利救灾资金21.54亿元，支持农业防灾减灾和水利工程设施水毁修复。\n\n其中，支持河北、内蒙古等13个省份及新疆生产建设兵团、北大荒农垦集团实施喷施作业等秋粮防灾举措，助力夺取秋粮和全年粮食丰收。\n\n落实政策支持，调动种粮积极性——\n\n今年中央财政稳定实施16项强农惠农富农政策，包括耕地地力保护补贴、玉米大豆生产者补贴和稻谷补贴、农业保险保费补贴等。在农业保险保费补贴方面，稻谷、小麦、玉米三大粮食作物及大豆完全成本保险和种植收入保险政策在全国全面实施。\n\n“十四五”时期，我国农业农村发展取得重大成就，粮食产量跃上1.4万亿斤新台阶。《加快农业农村现代化“十五五”规划》明确提出，到2030年粮食等重要农产品供给保障能力稳步提升，粮食综合生产能力达到1.45万亿斤左右。\n\n秋天的风拂过田野，收获的气息日渐浓郁。从政策支撑到防灾减损，从农资保供到科技赋能，各方正全力以赴夺取“十五五”开局之年秋粮和全年粮食丰收，共同端牢14亿多中国人的饭碗，为经济社会高质量发展夯实基础。  新华社北京9月12日电","新华每日电讯 | 2026-09-13","2026-09-13T00:00:00Z",true,92,{"impact":76,"substance":50,"depth":17,"authority":19,"freshness":77,"relevant":22,"comment":78},28,9,"央媒一线调研，含农情调度、资金与政策等实质数据，全国性粮食安全议题，时效性强，值得进入每日精选。",[80],{"name":71,"url":68},[27,28,57,82,83,84],"秋粮生产","水肥一体化","农业科技",[86,87],"水肥一体化 高标准农田 农业科技 秋粮生产","水肥一体化 高标准农田","水肥一体化高标准农田农业科技秋粮生产-2348","2026-09-14T00:06:25.812306Z",{"id":91,"title":92,"url":93,"summary":94,"summary_zh":8,"content":8,"source_name":95,"source_url":93,"published_at":96,"category":97,"cover_url":8,"hotness":13,"is_selected":14,"score":98,"score_detail":99,"sources":102,"tags":104,"search_phrases":109,"slug":112,"view_count":36,"doi":113,"paper":114,"created_at":131},2156,"“十五五”视野下三峡柑橘文化与产业的协同发展","https:\u002F\u002Fdoi.org\u002F10.54254\u002F3049-7825\u002F2026.36653","三峡地区是中国柑橘核心原产区与柑橘文化重要发祥地，兼具独特文化资源与领先产业基础，形成文化与产业双重优势。本文以三峡宜昌全域为研究样本，系统梳理当地柑橘文化资源与产业发展基底，分析秭归等地在文化符号品牌化嵌入、文化空间实体化嵌入、文化活动仪式化嵌入，以及脐橙产业全链开发、农文旅联动拓展等方面的实践经验，揭示文化嵌入与产业共生相互赋能的协同机制。在此基础上，对接《加快农业农村现代化“十五五”规划》关于科技农业、绿色农业、质量农业、品牌农业的战略部署，提出三峡柑橘产业在种业振兴与智慧农业升级、精深加工全价值利用、农文旅深度融合、区域公用品牌矩阵构建四个方向的发展路径，以期为宜昌及长江流域同类库区特色果业的文化赋能转型提供参考。","Ren wen she hui fa zhan.","2026-09-10T00:00:00Z","论文",65,{"impact":100,"substance":17,"depth":18,"authority":39,"freshness":21,"relevant":22,"comment":101},16,"以宜昌全域为样本系统梳理柑橘文化嵌入与产业共生机制，并对接“十五五”规划提出四条发展路径，兼具案例深度与政策参考价值，但来源权威性一般。",[103],{"name":95,"url":93},[105,106,28,107,31,108],"智慧农业","十五五规划","区域公用品牌","三峡柑橘",[110,111],"区域公用品牌 农文旅融合 十五五规划 三峡柑橘","区域公用品牌 农文旅融合","区域公用品牌农文旅融合十五五规划三峡柑橘-2156","10.54254\u002F3049-7825\u002F2026.36653",{"doi":113,"openalex_id":115,"authors":116,"venue":95,"cited_by_count":36,"oa_url":8,"card":123,"direction":129,"ingested_from":130},"W7212108476",[117,119,121],{"name":118,"orcid":8},"鸿宇 李",{"name":120,"orcid":8},"远来 陈",{"name":122,"orcid":8},"夏 张",{"tldr":124,"method":125,"finding":126,"direction":127,"opportunity":128},"以三峡宜昌为样本，梳理柑橘文化与产业协同机制并提出四条发展路径。","案例研究，分析秭归文化嵌入与脐橙全链开发经验。","文化嵌入与产业共生相互赋能，形成文化与产业双重优势。","数字乡村与农业信息化","可探究智慧农业升级中文化品牌数字化与农文旅数据融合的协同机制。","智慧农业 \u002F 农业物联网","openalex","2026-09-11T23:30:20.544739Z",{"id":133,"title":134,"url":135,"summary":136,"summary_zh":8,"content":8,"source_name":137,"source_url":8,"published_at":138,"category":12,"cover_url":8,"hotness":13,"is_selected":14,"score":139,"score_detail":140,"sources":143,"tags":145,"search_phrases":149,"slug":152,"view_count":36,"doi":8,"paper":8,"created_at":153},2102,"河北农林科学院旱作所\"衡早18号\"谷子新品种及节水高效生产技术现场观摩会在安平举办","http:\u002F\u002Fhebnky.com\u002Fjishuzhidaoxinxi.aspx?jszdid=2165","2026年9月1日河北农林科学院旱作所联合安平县农业农村局、安平县细雨家庭农场举办谷子新品种及节水高效生产技术集成示范观摩会。\"衡早18号\"适配衡水本地\"少雨时段持续干旱、多雨时段集中强降雨\"特点,具备抗旱早熟、优质稳产、抗倒伏、抗谷瘟病等优良特性,每亩6万株密植栽培可有效破解传统谷子种植耗水肥、费人工、难规模化短板,适宜大面积推广。","河北省农林科学院","2026-09-01T00:00:00Z",57,{"impact":52,"substance":100,"depth":52,"authority":52,"freshness":141,"relevant":22,"comment":142},5,"省级科研机构发布的谷子新品种与节水高效技术集成示范观摩会，具备抗旱早熟、密植栽培等实质技术信息，但属区域性推广动态，时效性一般，适合作为主题页聚合素材而非每日精选头条。",[144],{"name":137,"url":135},[28,146,147,148,30],"新品种推广","谷子","旱作农业",[150,151],"新品种推广 旱作农业 种业振兴 节水农业","新品种推广 旱作农业","新品种推广旱作农业种业振兴节水农业-2102","2026-09-11T00:04:21.315891Z",{"id":155,"title":156,"url":157,"summary":158,"summary_zh":159,"content":8,"source_name":160,"source_url":157,"published_at":161,"category":97,"cover_url":8,"hotness":13,"is_selected":14,"score":48,"score_detail":162,"sources":165,"tags":167,"search_phrases":171,"slug":174,"view_count":36,"doi":175,"paper":176,"created_at":196},3355,"AI and Sustainable Agriculture Through Cost–Benefit Analysis of Smart Irrigation Systems","https:\u002F\u002Fdoi.org\u002F10.22004\u002Fag.econ.412813","The advancing role of Artificial Intelligence (AI) and its application in agriculture have disrupted traditional agricultural practices, with smart irrigation systems representing one of the leading technologies enabling sustainable agriculture. Smart irrigation systems utilize real–time data, machine learning algorithms, and predictive analytics to better optimize irrigation water use, limit wasted resources, and improve the yields of crop products. The proposed research will assess the economic and environmental impacts of AI smart irrigation systems with a full costs–benefits analysis. The proposed research considers both the capital cost and operating cost of smart irrigation systems and compares these traditional irrigation practices while also examining the long–term benefits of potential water savings from Smart Irrigation Systems, expanded agricultural production, and reduced human labour. This will give context for measuring the impacts of Smart Irrigation Systems on farm businesses, including both opportunities and barriers to adoption. Additionally, using a formal literature review to lock down existing research and surveys of irrigation farmers to collect a field data set will provide the proposed researchers a collective sample to measure the efficacy of AI smart irrigation systems, identify barriers, compare opportunities, and measure performance under differing climate and soil properties. The research will find high and substantial respective levels of benefits from the implementation of AI–based smart systems, particularly in water–stressed systems with positive impacts on farm profitability, private, and environmental conservation. This research is essential for informing stakeholders of actions and the delivery of AI–enabled solutions in support of more sustainable agricultural practices.","人工智能（Artificial Intelligence, AI）的不断发展及其在农业中的应用已经颠覆了传统的农业实践，其中智能灌溉系统是实现可持续农业的领先技术之一。智能灌溉系统利用实时数据、机器学习算法和预测分析，更好地优化灌溉用水、减少资源浪费并提高作物产量。拟议研究将通过全面的成本效益分析，评估AI智能灌溉系统的经济和环境影响。该研究将综合考虑智能灌溉系统的资本成本和运营成本，并将其与传统灌溉实践进行比较，同时考察智能灌溉系统在潜在节水、扩大农业生产和减少人力劳动方面的长期效益。这将为衡量智能灌溉系统对农场经营的影响提供背景，包括采用的机会和障碍。此外，通过正式文献综述锁定现有研究成果，并对灌溉农户进行调查以收集实地数据集，将为拟议研究者提供一个集体样本，用以衡量AI智能灌溉系统的效能、识别障碍、比较机会，并评估在不同气候和土壤条件下的表现。研究发现，实施基于AI的智能系统可带来显著且可观的效益，尤其是在水资源紧张的地区，对农场盈利能力、私人利益和环境保护均有积极影响。这项研究对于向利益相关者通报行动方案以及推动AI赋能解决方案以支持更可持续的农业实践至关重要。","AgEcon Search (University of Minnesota, USA)","2026-09-23T00:00:00Z",{"impact":17,"substance":51,"depth":17,"authority":163,"freshness":21,"relevant":22,"comment":164},13,"该研究以成本效益分析评估AI智能灌溉的经济与环境效益，方法系统、结论具参考价值，但属学术论文而非政策或产业事件，适合作为智慧农业主题的深度补充。",[166],{"name":160,"url":157},[105,168,169,30,170],"农业人工智能","智能灌溉","成本效益分析",[172,173],"AI 智能灌溉 成本效益","AgEcon Search 智能灌溉","AI智能灌溉成本效益-3355","10.22004\u002Fag.econ.412813",{"doi":175,"openalex_id":177,"authors":178,"venue":160,"cited_by_count":36,"oa_url":157,"card":191,"direction":129,"ingested_from":130},"W7214115789",[179,181,183,185,187,189],{"name":180,"orcid":8},"Venkata Suman Jami",{"name":182,"orcid":8},"Purushotham Prasad Kalisetti",{"name":184,"orcid":8},"Sampath Dakshina Murthy A.",{"name":186,"orcid":8},"Gurunadha R.",{"name":188,"orcid":8},"Hema Mamidipaka",{"name":190,"orcid":8},"Gurrapu Omprakash",{"tldr":192,"method":193,"finding":194,"direction":129,"opportunity":195},"通过成本效益分析评估AI智能灌溉系统的经济与环境影响。","文献综述结合灌溉农户调查数据，进行成本效益分析。","AI智能灌溉在水资源紧张地区效益显著，提升利润并促进环保。","可针对不同气候土壤条件，量化AI灌溉的长期采纳障碍与推广机制。","2026-09-24T23:30:10.558578Z",{"id":198,"title":199,"url":200,"summary":201,"summary_zh":202,"content":8,"source_name":203,"source_url":200,"published_at":161,"category":97,"cover_url":8,"hotness":13,"is_selected":14,"score":204,"score_detail":205,"sources":208,"tags":210,"search_phrases":214,"slug":217,"view_count":36,"doi":218,"paper":219,"created_at":246},3350,"Precision agriculture for water saving: The case of processing tomato and table grape","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fppp3.70253","Societal Impact Statement Agriculture faces increasing pressure to produce high‐quality food while reducing water use under intensifying climate change and water scarcity. This study compared sensor‐based precision irrigation, drone monitoring, and near‐infrared spectroscopy with conventional farmer management in table grape and processing tomato production systems. Precision agriculture improved crop water status, photosynthetic performance, yield, and marketable quality, while reducing irrigation by 8%–15% in table grape and approximately 15% in processing tomato. These findings support wider adoption of integrated digital tools through targeted incentives and farmer training, offering a scalable strategy to strengthen long‐term water security, farm resilience, and sustainable food production globally. Summary The study aimed to evaluate the effectiveness of precision agriculture (PA) technologies, specifically sensor‐based irrigation and drones, on table grape (cv. Allison ) and processing tomato (cv. Taylor ) production compared to traditional farming methods (control). The research involved field experiments in two locations in the Puglia region, southeastern Italy, in 2023 and 2024. For table grape and processing tomato, two different irrigation managements (PA vs. Control\u002FFarmer) were compared, monitoring physiological, morphological, yield, and quality parameters. For processing tomato, drone imagery, and ground measurements were also conducted. Predictive models for fruit ripeness and quality traits of both species were also developed using near‐infrared (NIR) spectroscopy data, preprocessing techniques, and PLS regression. For table grape, the PA vines showed greater water potential stability, more uniform stomatal conductance, and higher chlorophyll content, resulting in higher and more consistent production with 8%–15% water savings. For processing tomato, PA management improved plant vegetative indicators, total and marketable yields, and reduced water consumption by approximately 15%. Three out of four calibrated models using NIR showed predictive performance suitable for future practical applications. The findings highlight the potential of PA to improve water resource utilization, crop development, yield, and fruit quality, contributing to more sustainable agricultural systems in regions facing water scarcity and climate change. Moreover, this work demonstrates how sensor‐driven irrigation of the two crops (with more equilibrated plants) directly influenced high‐accuracy predictive modelling. The integration of environmental sensors (for irrigation) and optical sensors (for quality) will represent the core of modern smart farming.","社会影响声明 在气候变化加剧和水资源短缺的背景下，农业面临着在生产高质量食品的同时减少用水量的日益增大的压力。本研究在鲜食葡萄和加工番茄生产系统中，将基于传感器的精准灌溉、无人机监测和近红外光谱技术与传统农户管理进行了比较。精准农业改善了作物水分状况、光合性能、产量和商品品质，同时在鲜食葡萄中减少了8%–15%的灌溉用水，在加工番茄中减少了约15%。这些发现支持通过有针对性的激励措施和农户培训来更广泛地采用集成数字工具，为增强全球长期水资源安全、农场韧性和可持续食品生产提供了一种可推广的策略。摘要 本研究旨在评估精准农业（PA）技术，特别是基于传感器的灌溉和无人机，在鲜食葡萄（品种Allison）和加工番茄（品种Taylor）生产中相较于传统耕作方法（对照）的有效性。研究于2023年和2024年在意大利东南部普利亚地区的两个地点进行了田间试验。对于鲜食葡萄和加工番茄，比较了两种不同的灌溉管理方式（PA vs. 对照\u002F农户），监测了生理、形态、产量和品质参数。对于加工番茄，还进行了无人机影像采集和地面测量。研究还利用近红外（NIR）光谱数据、预处理技术和PLS回归，开发了两种作物果实成熟度和品质性状的预测模型。对于鲜食葡萄，PA处理的葡萄藤表现出更强的水势稳定性、更均匀的气孔导度和更高的叶绿素含量，从而实现了更高且更稳定的产量，并节约了8%–15%的用水。对于加工番茄，PA管理改善了植株营养指标、总产量和商品产量，并减少了约15%的耗水量。使用NIR校准的四个模型中有三个显示出适合未来实际应用的预测性能。研究结果凸显了PA在改善水资源利用、作物发育、产量和果实品质方面的潜力，有助于在水资源短缺和气候变化地区构建更可持续的农业系统。此外，本研究还表明，两种作物的传感器驱动灌溉（使植株更加均衡）……","Plants People Planet",81,{"impact":17,"substance":50,"depth":17,"authority":206,"freshness":77,"relevant":22,"comment":207},14,"意大利田间试验证实传感器与无人机精准灌溉可节水8%–15%并提升产量品质，对缺水地区智慧农业推广有实证参考价值。",[209],{"name":203,"url":200},[105,211,212,30,213],"农业遥感","精准灌溉","近红外光谱",[215,216],"加工番茄 精准灌溉 节水","鲜食葡萄 无人机 灌溉","加工番茄精准灌溉节水-3350","10.1002\u002Fppp3.70253",{"doi":218,"openalex_id":220,"authors":221,"venue":203,"cited_by_count":36,"oa_url":200,"card":241,"direction":129,"ingested_from":130},"W7214079746",[222,225,228,230,232,235,238],{"name":223,"orcid":224},"Giuseppe Ferrara","https:\u002F\u002Forcid.org\u002F0000-0002-2129-6723",{"name":226,"orcid":227},"Alessandro Pesole","https:\u002F\u002Forcid.org\u002F0009-0007-1292-4517",{"name":229,"orcid":8},"Rita De Marco",{"name":231,"orcid":8},"Sara Bisceglie",{"name":233,"orcid":234},"Giovanni Popeo","https:\u002F\u002Forcid.org\u002F0009-0003-6796-3880",{"name":236,"orcid":237},"Simone Pascuzzi","https:\u002F\u002Forcid.org\u002F0000-0002-6699-3485",{"name":239,"orcid":240},"Luigi Tedone","https:\u002F\u002Forcid.org\u002F0000-0003-4398-3820",{"tldr":242,"method":243,"finding":244,"direction":129,"opportunity":245},"对比传感器精准灌溉、无人机与近红外光谱和传统管理在葡萄与番茄上的节水增产效果。","意大利普利亚两年田间试验，传感器灌溉、无人机监测与NIR光谱PLS建模。","精准农业改善水分与光合状态，葡萄节水8%–15%、番茄约15%，并提高产量与品质。","可探索多源传感与NIR模型跨品种跨区域迁移，并量化农户采纳激励与培训的长期节水效益。","2026-09-24T23:30:10.070697Z"]