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An Intelligent Wireless Electronic Nose Node for Monitoring Gas Mixtures Using Neuro-Fuzzy Networks Implemented on a Microcontroller

机译:使用微控制器上实现的神经模糊网络监控气体混合物的智能无线电子鼻节点

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This paper presents an intelligent wireless electronic nose node (WENN) that has been designed to classify and quantify binary gas mixtures, NH3 and H2S, the main malodors in various environments. The proposed WENN is based on embedded PC technology and neuro-fuzzy network algorithms. The hardware part of the designed system consists of a microcontroller for processing the measured data set obtained from a micro-gas sensor array, and a Zigbee-ready RF transceiver for transmitting the processed data to a base node. The main program embedded on the designed hardware performs real-time classification and concentration estimation of the binary gas mixtures using the fuzzy ART and ARTMAP neural networks. To verify performance of the designed intelligent WENN, the measured data from the experiments for the binary gas mixtures have been executed using the WENN. The results show the reproducibility of the measured data and the verification of real-time classification and concentration estimation for the target gas.
机译:本文介绍了一种智能无线电子鼻节点(WENN),该电子鼻节点被设计用于分类和量化二元气体混合物NH 3 和H 2 S(各种臭味中的主要恶臭)环境。拟议的WENN基于嵌入式PC技术和神经模糊网络算法。所设计系统的硬件部分包括一个微控制器,用于处理从微气体传感器阵列获得的测量数据集;以及一个Zigbee就绪的RF收发器,用于将处理后的数据传输到基本节点。嵌入在设计的硬件中的主程序使用模糊ART和ARTMAP神经网络对二元混合气进行实时分类和浓度估算。为了验证设计的智能WENN的性能,已使用WENN执行了来自二元混合气实验的测量数据。结果显示了测量数据的可再现性,并验证了目标气体的实时分类和浓度估算。

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