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Methane Gas Density Monitoring and Predicting Based on RFID Sensor Tag and CNN Algorithm

机译:基于RFID传感器标签和CNN算法的甲烷气体密度监测与预测

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摘要

According to the advantages of integrating wireless sensors networks (WSN) and radio frequency identification (RFID), this paper proposes a novel method for methane gas density monitoring and predicting based on a passive RFID sensor tag and a convolutional neural networks (CNN) algorithm. The proposed wireless sensor is based on electronic product code (EPC) generation2 (G2) protocol and the sensor data is embedded into the identification (ID) information of the RFID chip. The wireless sensor consists of a communication section, radio-frequency (RF) front-end section, and digital section. The communication section is used to perform the transmission and reception of wireless signals, modulation, and demodulation. The RF front-end section is adopted to provide the stable supply voltage for other parts. The digital section is employed to achieve sensor data and control the overall operation of the wireless sensor based on EPC protocol. Because the miscellaneous noises will decrease the accuracy during the process of data wireless transmission, the CNN algorithm is adopted to extract the robust feature from raw data. The measurement results show that the exploited RFID sensor can realize a maximum communication distance of 10.3 m and can accurately measure and predict the methane gas density in an underground mine. The RFID sensor technology is a beneficial supplement to the current underground WSN monitoring system.
机译:结合无线传感器网络(WSN)和射频识别(RFID)的优点,提出了一种基于无源RFID传感器标签和卷积神经网络(CNN)算法的甲烷气体浓度监测和预测的新方法。所提出的无线传感器基于电子产品代码(EPC)generation2(G2)协议,并且传感器数据嵌入到RFID芯片的标识(ID)信息中。无线传感器由通信部分,射频(RF)前端部分和数字部分组成。通信部分用于执行无线信号的发送和接收,调制和解调。 RF前端部分用于为其他部件提供稳定的电源电压。数字部分用于实现传感器数据并基于EPC协议控制无线传感器的整体操作。由于杂散噪声会降低数据无线传输过程中的精度,因此采用CNN算法从原始数据中提取鲁棒特征。测量结果表明,所开发的RFID传感器可以实现最大10.3 m的通信距离,并且可以准确地测量和预测地下矿井中的甲烷气体密度。 RFID传感器技术是当前地下WSN监控系统的有益补充。

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