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Computer vision and artificial intelligence in precision agriculture for grain crops: A systematic review

机译:粮食粮食作物精密农业计算机视觉和人工智能:系统评价

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摘要

Grain production plays an important role in the global economy. In this sense, the demand for efficient and safe methods of food production is increasing. Information Technology is one of the tools to that end. Among the available tools, we highlight computer vision solutions combined with artificial intelligence algorithms that achieved important results in the detection of patterns in images. In this context, this work presents a systematic review that aims to identify the applicability of computer vision in precision agriculture for the production of the five most produced grains in the world: maize, rice, wheat, soybean, and barley. In this sense, we present 25 papers selected in the last five years with different approaches to treat aspects related to disease detection, grain quality, and phenotyping. From the results of the systematic review, it is possible to identify great opportunities, such as the exploitation of GPU (Graphics Processing Unit) and advanced artificial intelligence techniques, such as DBN (Deep Belief Networks) in the construction of robust methods of computer vision applied to precision agriculture.
机译:粮食生产在全球经济中发挥着重要作用。从这个意义上讲,对粮食生产的高效和安全方法的需求正在增加。信息技术是该目的的工具之一。在可用的工具中,我们突出了与人工智能算法结合的计算机视觉解决方案,以便在检测图像中的模式中实现重要结果。在这方面,这项工作提出了一个系统的审查,旨在确定计算机愿景在精密农业中的适用性,以生产世界上五大产量的五大谷物:玉米,大米,小麦,大豆和大麦。从这个意义上讲,我们在过去五年中选择了25篇论文,以不同的方法来处理与疾病检测,粒度和表型相关的方面。从系统审查的结果中,可以识别巨大的机会,例如对GPU(图形处理单元)和高级人工智能技术的开发,例如DBN(深度信仰网络)的计算机视觉的鲁棒方法的构建适用于精密农业。

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