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一种使用 Fe2O3 气体传感阵列和最小二乘支持向量回归的无线电子鼻系统。

A wireless electronic nose system using a Fe2O3 gas sensing array and least squares support vector regression.

机构信息

School of Electrical Engineering and Automation, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Sensors (Basel). 2011;11(1):485-505. doi: 10.3390/s110100485. Epub 2011 Jan 5.

Abstract

This paper describes the design and implementation of a wireless electronic nose (WEN) system which can online detect the combustible gases methane and hydrogen (CH(4)/H(2)) and estimate their concentrations, either singly or in mixtures. The system is composed of two wireless sensor nodes--a slave node and a master node. The former comprises a Fe(2)O(3) gas sensing array for the combustible gas detection, a digital signal processor (DSP) system for real-time sampling and processing the sensor array data and a wireless transceiver unit (WTU) by which the detection results can be transmitted to the master node connected with a computer. A type of Fe(2)O(3) gas sensor insensitive to humidity is developed for resistance to environmental influences. A threshold-based least square support vector regression (LS-SVR)estimator is implemented on a DSP for classification and concentration measurements. Experimental results confirm that LS-SVR produces higher accuracy compared with artificial neural networks (ANNs) and a faster convergence rate than the standard support vector regression (SVR). The designed WEN system effectively achieves gas mixture analysis in a real-time process.

摘要

本文描述了一种无线电子鼻(WEN)系统的设计与实现,该系统可在线检测可燃气体甲烷和氢气(CH(4)/H(2)),并对其浓度进行估计,无论是单独存在还是混合存在。该系统由两个无线传感器节点——从节点和主节点组成。前者包括一个用于可燃气体检测的 Fe(2)O(3)气体传感阵列、一个用于实时采样和处理传感器阵列数据的数字信号处理器(DSP)系统以及一个无线收发单元(WTU),通过该单元可以将检测结果传输到与计算机相连的主节点。开发了一种对湿度不敏感的 Fe(2)O(3)气体传感器,以抵抗环境影响。在 DSP 上实现了基于阈值的最小二乘支持向量回归(LS-SVR)估计器,用于分类和浓度测量。实验结果证实,LS-SVR 比人工神经网络(ANNs)具有更高的准确性,并且比标准支持向量回归(SVR)具有更快的收敛速度。所设计的 WEN 系统有效地实现了实时过程中的气体混合物分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44d3/3274112/94f041a55de0/sensors-11-00485f1.jpg

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