论文标题

对城市和受控环境农业中计算机视觉技术的调查

A Survey of Computer Vision Technologies In Urban and Controlled-environment Agriculture

论文作者

Luo, Jiayun, Li, Boyang, Leung, Cyril

论文摘要

在农业到下一阶段的发展中,农业5.0,人工智能将发挥核心作用。受控环境农业或CEA是城市和郊区农业实践的一种特殊形式,可提供众多经济,环境和社会福利,包括向人口中心的交通工具较短,环境影响降低以及生产率提高。由于其控制环境因素的能力,CEA与计算机视觉(CV)的夫妻在实时监测植物条件以及自主耕种和收获方面非常吻合。本文的目的是使CV研究人员使用CV提供的解决方案熟悉农业应用和农业从业人员。我们在CEA中确定了五个主要的简历应用,分析其需求和动机,并使用深度学习方法在68篇技术论文中进行了调查。此外,我们讨论了计算机视觉的五个关键亚地区,以及它们与这些CEA问题以及11个基于视觉的CEA数据集的关系。我们希望这项调查能够帮助研究人员迅速获得对研究领域的鸟眼的看法,并为新的研发带来灵感。

In the evolution of agriculture to its next stage, Agriculture 5.0, artificial intelligence will play a central role. Controlled-environment agriculture, or CEA, is a special form of urban and suburban agricultural practice that offers numerous economic, environmental, and social benefits, including shorter transportation routes to population centers, reduced environmental impact, and increased productivity. Due to its ability to control environmental factors, CEA couples well with computer vision (CV) in the adoption of real-time monitoring of the plant conditions and autonomous cultivation and harvesting. The objective of this paper is to familiarize CV researchers with agricultural applications and agricultural practitioners with the solutions offered by CV. We identify five major CV applications in CEA, analyze their requirements and motivation, and survey the state of the art as reflected in 68 technical papers using deep learning methods. In addition, we discuss five key subareas of computer vision and how they related to these CEA problems, as well as eleven vision-based CEA datasets. We hope the survey will help researchers quickly gain a bird-eye view of the striving research area and will spark inspiration for new research and development.

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