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A Smart Wireless System to Automate Production of Crops and Stop Intrusion Using Deep Learning

机译:使用深度学习实现作物生产自动化和阻止入侵的智能无线系统

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The idea of automating the production of crops has existed since the early 90s and one of the major issues both scientists and farmers face, is the question of irrigation. An irrigation system is a dynamic system that is predominantly dependent on external covariant. This paper provides a methodology by utilizing a custom-built mathematical model which includes wireless sensors as a data source that is processed on Google Cloud there by providing a smart IoT enabled architecture that can be scaled even on large farms. Based on Holistic Agricultural surveys, around 35% of crops get destroyed due to animals and humans. This intelligent system is enabled with deep learning neural networks implemented with Tensorflow to identify animals based on its threat level and human intruders who are not authorized on the farm, and immediately report the intrusion to the farmer. The system is equipped with an android application that provides remote access to the system and surveillance through live video streaming.
机译:作物生产自动化的想法自90年代初以来就存在,而灌溉技术是科学家和农民都面临的主要问题之一。灌溉系统是一个动态系统,主要依赖于外部协变量。本文通过利用定制的数学模型(包括无线传感器作为数据源)提供了一种方法,该模型通过提供支持物联网的智能架构(甚至可以在大型农场中进行扩展)在Google Cloud上进行处理。根据整体农业调查,大约35%的农作物因动物和人类而遭到破坏。通过使用Tensorflow实施的深度学习神经网络,该智能系统可以根据威胁水平和未经农场授权的人类入侵者识别动物,并立即向农场主报告入侵情况。该系统配有一个android应用程序,可通过实时视频流提供对系统的远程访问和监视。

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