用物联网与AI打造智能气雾栽培温室,实时控水防病
Developing an aeroponic smart experimental greenhouse for controlling irrigation and plant disease detection using deep learning and IoT
- 集成物联网与深度学习,实现环境参数自动调控
- VGG-19识别植物病害准确率达92%,优于其他模型
- 适合农业科研与智慧大棚开发者参考
控制温室环境并监测植物状态对促进作物生产至关重要。本研究开发并测试了一套实验级智能气雾栽培温室系统,通过物联网(IoT)与人工智能(AI)技术持续监测天竺葵植物状态及环境条件。基于IoT的平台可高效调控环境参数,并向用户实时推送温度、湿度、水流及储液罐体积等数据,动态调节以提供最优生长环境。同时,采用VGG-19、InceptionResNetV2和InceptionV3算法构建了基于AI的病害检测框架,对人工接种后的植物图像进行分析。结果表明,该框架在专家评估下表现良好,其中VGG-19在识别干旱胁迫与锈病叶片方面准确率最高,达92%。
原文摘要 · Abstract (English)
Controlling environmental conditions and monitoring plant status in greenhouses is critical to promptly making appropriate management decisions aimed at promoting crop production. The primary objective of this research study was to develop and test a smart aeroponic greenhouse on an experimental scale where the status of Geranium plant and environmental conditions are continuously monitored through the integration of the internet of things (IoT) and artificial intelligence (AI). An IoT-based platform was developed to control the environmental conditions of plants more efficiently and provide insights to users to make informed management decisions. In addition, we developed an AI-based disease detection framework using VGG-19, InceptionResNetV2, and InceptionV3 algorithms to analyze the images captured periodically after an intentional inoculation. The performance of the AI framework was compared with an expert's evaluation of disease status. Preliminary results showed that the IoT system implemented in the greenhouse environment is able to publish data such as temperature, humidity, water flow, and volume of charge tanks online continuously to users and adjust the controlled parameters to provide an optimal growth environment for the plants. Furthermore, the results of the AI framework demonstrate that the VGG-19 algorithm was able to identify drought stress and rust leaves from healthy leaves with the highest accuracy, 92% among the other algorithms.
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