使用远程AWS数据进行本地天气插值,并使用稀疏WSN进行误差校正,用于印度农业的自动灌溉

N. Hema, K. Kant
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引用次数: 11

摘要

自动灌溉系统需要天气信息来进行灌溉控制。来自政府机构的分散的自动气象站(ASW)或无线传感器网络(WSN)用于天气监测目的。在农民的成本和监测参数的准确性方面,每种方法都有自己的优点和缺点。本文提出了一种利用附近ASW实时空间插值技术,实时预测局部天气(拟灌区)参数,结果精度达99.59%左右。在此基础上,提出了一种基于土壤湿度传感器的稀疏WSN校正技术。这项提议的技术有望通过更精确的灌溉来提高该地区气候参数的准确性,从而为农民节省能源、水和安装成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Local weather interpolation using remote AWS data with error corrections using sparse WSN for automated irrigation for Indian farming
Automated irrigation system needs weather information for irrigation control. Scattered automated weather stations (ASW) from government agencies or wireless sensor network (WSN) are used for weather monitoring purpose. Each has its own advantages and disadvantage in terms of cost to farmers and accuracy on monitoring parameters. This paper proposes a technique of real-time spatial interpolation using nearby ASW to predict real-time local weather (area under consideration for irrigation) parameter and accuracy of result is about 99.59%. Further, this paper proposes a correction technique by using sparse WSN with soil moisture sensor installed in it. This proposed technique is expected to increase the accuracy of climatic parameters for the area under consideration with more precise irrigation, which in turn saves energy, water and installation cost to farmers.
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