基于物联网的智慧农业土壤营养与植物病害检测系统

Sashant Suhag, Nidhi Singh, Sanskriti Jadaun, P. Johri, Ayushi Shukla, Nidhi Parashar
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引用次数: 7

摘要

在未来几年,农民将面临养活不断增长的人口的挑战。他们需要确保粮食安全,减少对进口的依赖。有效利用新技术提高农业效率将有助于农民满足不断增长的人口需求,人工智能和物联网相关的自动化旨在改善农民处理各种任务的方式。我们提出了一个基于物联网的土壤营养和植物病害检测框架,该框架使用各种传感器以不同时间间隔的图像形式收集植物相关数据,使用MY THINGS智能传感器和土壤传感器(如近端土壤传感器(PSS))来测试土壤肥力,这有助于分析土壤新栽培,耕作,水或收获土地的状况。还使用温度传感器。使用水质传感器来持续监测水质。所有的数据都将在物联网的帮助下发送给农民。对于图像分类,使用局部二值阈值。在采集时,机器人进行图像识别和分类。农民将输入所需的数据,使用机械臂自动收获庄稼。该机械臂被设计为四个自由度,并将由电机驱动。机械臂将使用图像识别技术识别作物,并将这批作物放入适当的篮子中,供农民考虑进行分析。通过定期监测,这一拟议框架可以极大地帮助农民保持作物健康和质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IoT based Soil Nutrition and Plant Disease Detection System for Smart Agriculture
In the coming years, farmers will face challenges to feed the increasing number of populations. They need to ensure food security and reduce the dependency on imports. The effective use of new technologies to increase the efficiency of farming will help the farmers to meet the need of increased population AI and IOT related automation to be designed to improve the way a farmer operates for various tasks. We propose a framework for IoT based Soil Nutrition and Plant Disease detection which uses various sensors to collect the plant-related data in form of images at different time intervals using MY THINGS smart sensor and Soil sensors such as proximal soil sensor (PSS) to test the soil fertility which helps to analyze the condition of soil new cultivation, ploughing, water or the land for harvesting. Temperature sensors are also used. Water quality sensors are used that will keep monitoring the quality of the water. All the data will we be sent to the farmer with the help of the IoT. For image classification, Local binary thresholding is used. At harvesting time robot performs image recognition and classification. The farmer will enter the required data to use the robotic arm to automatically harvest the crop. The arm is proposed to have four degrees of freedom and will be driven by the motors. Robotic arms will identify the crop using image recognition and will put that batch in the appropriate basket to be considered by the farmer for analysis. With regular monitoring, this proposed framework can greatly aid the farmers in maintaining crop health as well as quality.
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