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River Water Pollution Pattern Prediction using a Simple Neural Network

机译:利用简单神经网络的河水污染模式预测

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Rivers are an important element of its environment; river water sustains and prospers living beings in its surrounding. When river water becomes polluted, though, it becomes useless or even harmful to its ecosystem. This Paper proposes an IoT (Internet of Things) based system as a solution to counteract river pollution. The system is composed of a hardware that measures pH, temperature, and turbidity of the water - then transmitting the data via LPWAN (Low Power Wide Area Network), more specifically LoRa (Long Range. Successfully transmitted data will be used to train an ANN (Artificial Neural Network) which is used to recognize and predict patterns of river water pollution. The monitoring and prediction results will be accessible via a web app. This Paper has successfully designed and built a system that implements an ANN for recognizing patterns in river conditions, to predict potential river pollution. Early detection of river pollution can serve as vital information to act in preventing or anticipating river pollution.
机译:河流是其环境的重要因素;河水维持和犹太人在周围的生物。然而,当河水变得污染时,它变得无用或甚至有害于其生态系统。本文提出了一种基于IOT(互联网)的系统作为抵消河流污染的解决方案。该系统由衡量水的pH,温度和浊度的硬件组成 - 然后通过LPWAN(低功率广域网)来传输数据,更具体地说,LORA(远程。成功传输数据将用于培训ANN (人工神经网络)用于识别和预测河水污染模式。监控和预测结果将通过Web应用程序访问。本文已成功设计和构建了一个系统,用于识别河流条件中的模式的ANN。 ,预测潜在的河流污染。早期发现河流污染可以作为预防或预防河流污染的重要信息。

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