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Review Paper on Prediction of Crop Disease Using IoT and Machine Learning

机译:使用物联网和机器学习预测作物病害的评论论文

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Environmental parameters like humidity, temperature, rainfall, wind flow, light intensity, soil pH are main factors for precision agriculture. Fluctuations in weather parameters like humidity, temperature and so on along with the inappropriate management result into a decrease in crop productivity. Therefore disease prediction is more important to beat these problems. The real-time update will alert the farmer by indicating which crop is in trouble, so the expenses on insecticides, pesticides will reduce and overall economic condition of farmers will improve. The proposed system gives more emphasis to predict diseases of the crop with the use of the Internet of Things and machine learning algorithms. Different sensors collect the real-time data of environmental parameters like temperature, humidity, rainfall, light intensity. Utilizing these data, crop diseases are predicted using machine learning algorithms. Such predictions would warn the farmers about crop diseases through text message or web browser. This work can be extended in the future to help farmers in other ways like which fertilizer can be used to overcome this disease problem.
机译:湿度,温度,降雨量,风量,光照强度,土壤pH值等环境参数是精确农业的主要因素。天气参数(例如湿度,温度等)的波动以及不当的管理导致作物生产力的下降。因此,疾病预测对于克服这些问题更为重要。实时更新将通过指示哪种作物有问题向农民发出警报,从而减少杀虫剂,农药的支出,并改善农民的整体经济状况。所提出的系统更加重视通过物联网和机器学习算法来预测农作物的病害。不同的传感器收集环境参数的实时数据,例如温度,湿度,降雨,光强度。利用这些数据,可以使用机器学习算法预测农作物疾病。这样的预测将通过短信或网络浏览器警告农民有关作物病害。这项工作可以在将来扩展,以其他方式帮助农民,例如可以使用肥料来解决该疾病问题。

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