课题基金 / 基金详情

Enabling wide area persistent remote sensing for agriculture applications by developing and coordinating multiple heterogeneous platforms

Enabling wide area persistent remote sensing for agriculture applications by developing and coordinating multiple heterogeneous platforms
通过开发和协调多个异构平台,实现农业应用的广域持续遥感
批准号:
ST/N006852/1
负责人:
Wen-Hua Chen
金额:
$153.86万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2016
资助国家:
英国
项目状态:
已结题
起止时间:
2016 至 --

项目摘要

项目成果

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中文摘要
翻译
该项目旨在通过开发和协调多个遥感平台,如卫星、无人机、飞艇甚至地面无人驾驶车辆,发展用于农业应用的广域、持久遥感能力。它旨在提供可持续农业所需的前所未有的高密度时空信息。农业目前在确保世界人口的粮食供应方面面临严峻挑战。在不久的将来,随着人口老龄化结构的加剧,全球人口将继续增长。因此,随着全球人口的增长,对食品的需求预计将继续上升,在中国等快速发展的国家,不断壮大的中产阶级需要更多的肉类和乳制品。同样,由于中国经济的增长,对能源和淡水的总需求也将增加。极端天气事件发生频率的增加将严重阻碍粮食生产。可持续集约化农业被广泛认为是应对这一挑战的答案,其目的是在不对自然资源和环境造成不利破坏的情况下增加粮食产量。粮食产量的增加是通过培育具有更高资源效率和产量潜力的品种、更好地利用这些品种以及更好地管理作物以减少不利因素(如病虫害、洪涝、干旱)造成的作物损失来实现的。遥感在中国和其他国家的可持续农业发展中发挥着关键作用。遥感提供了关于作物、其生长环境和其他关键相关因素(如迁徙昆虫和疾病)的及时、综合、成本效益高和重复的信息。遥感观测数据具有广泛的应用前景;例如,不仅为农场管理或早期发现疾病提供及时的信息,而且还为了解农业所涉及的生物科学和为未来预测开发统计作物模型提供信息。尽管遥感平台,特别是无人驾驶飞行器取得了所有进展,但它们仍然无法提供所需的广域持久遥感能力;例如,在了解某些病虫害的爆发和传播时,既需要宏观数据,也需要微观数据。本项目旨在从两个方面提升现有的遥感能力:1)进一步改进现有的遥感平台,特别是飞艇和小型无人机,包括指向系统和车辆;2)更重要的是,根据现有不同类型的传感平台(如卫星、无人机或飞艇)的性能和特点进行协调。在满足特定应用的遥感要求的同时,为了降低操作成本和对操作员经验/技能的依赖,将开发用于部署平台的战略和战术决策、规划和协调工具,以使用自主系统技术自动化大部分农业遥感任务。
英文摘要
This project is to develop wide area, persistent remote sensing capability for agriculture applications by developing and coordinating a number of sensing platforms such as satellites, unmanned aerial vehicles, airships, and even ground unmanned vehicles. It is aimed to provide an unprecedented high density of spatial and temporal information required in sustainable agriculture. Agriculture is currently facing serious challenges in securing food supply to the world population. Global population will continue to grow in the near future with an increasing aging-population structure. Thus the demand for food is expected to continue to rise as global population grows and a rising middle class desires more meat and dairy products in rapidly developing countries like China. Similarly, the total demand for energy and fresh water will increase as a result of economic growth in China. The increased frequency of extreme weather events occurring will seriously hamper food production. Sustainable intensive agriculture is widely perceived to be the answer to the challenge, which aims to increase food production without adversely damaging natural resources and environment. This increased food production is achieved through breeding cultivars with increased resource efficiency and yield potential, better deployment of these cultivars, and better crop husbandry to reduce crop losses due to adverse factors (e.g. pests, diseases, flooding, drought). Remote sensing plays a key role in developing sustainable agriculture for China and other countries. Remote sensing provides timely, synoptic, cost-effective and repetitive information about crops, their growth environments and other key relevant elements such as migratory insects and diseases. The observed data from the remote sensing can find a wide range of applications; for example, not only providing timely information for farm management or early detection of diseases but also for understanding the biological science involved in agriculture and developing statistical crop modelling for future predictions. Despite all the advances in remote sensing platforms particularly unmanned aerial vehicles, they are still not able to provide required wide area persistent remote sensing capability; for example, both macroscopic and microscopic data are required in understanding outbreak and the propagation of some diseases and pests. This project is to advance the current remote sensing capability by two approaches: 1) further improving the current sensing platforms particularly airships and small scale unmanned aircraft including both pointing systems and vehicles; 2) more importantly coordinating different types of existing sensing platforms (i.e. satellites, unmanned aircraft, or airship) based on their performance and characteristics. With the aim of reducing operation cost and the reliance on the operator's experience/skills while fulfilling the remote sensing requirements for a specific application, both strategical and tactical decision making, planning and coordination tools for the deployment of the platforms will be developed to automate most of the remote sensing tasks for agriculture using autonomous system technologies.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.3390/s18072132
发表时间: 2018-07-03
期刊: Sensors (Basel, Switzerland)
影响因子: --
作者: [Coombes M, Fletcher T, Chen WH, Liu C]
通讯作者: Liu C
Deep CNN based droplet deposition segmentation for spray distribution assessment
基于深度 CNN 的液滴沉积分割用于喷雾分布评估
DOI: 10.1109/icac55051.2022.9911061
发表时间: 2022
期刊:
影响因子: --
作者: [Chen T]
通讯作者: Chen T
DOI: 10.23919/chicc.2018.8484051
发表时间: 2018-07
期刊: 2018 37th Chinese Control Conference (CCC)
影响因子: --
作者: [Zhenhong Li;Tianqiao Zhao;Z. Ding]
通讯作者: Zhenhong Li;Tianqiao Zhao;Z. Ding
DOI: 10.23919/chicc.2018.8483957
发表时间: 2018-07
期刊: 2018 37th Chinese Control Conference (CCC)
影响因子: --
作者: [Guanghao Cheng;Songyin Cao;Lei Guo;Wenhua Chen]
通讯作者: Guanghao Cheng;Songyin Cao;Lei Guo;Wenhua Chen
共 6 条
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      2020
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      2012
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      面上项目
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    • 项目类别:
      面上项目
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