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Background Interference Elimination in Wound Infection Detection by Electronic Nose Based on Reference Vector-based Independent Component Analysis

机译:基于参考矢量的独立分量分析在电子鼻伤口感染检测中消除背景干扰

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摘要

Background interference is serious and widespread problem in wound infection detection by electronic nose (ENose). When mice are used as experimental subjects, the background interference, i.e., the odor of the mice themselves, is very strong and useful information is often buried in it. A new method of eliminating the background interference and detecting wound infection, based on an ENose in cooperation with reference vector-based Independent Component Analysis (ICA) denoising algorithm is proposed. It employs ICA to decompose each signal of the sensor array and extract the independent components and then discriminates the useful sources and Background interference through the Correlation with the reference Vector. The independent components of which the background interference had been eliminated are used as the inputs of Radial Basis Function (RBF) network for discrimination. The result shows that this method is effective and practical for background interference elimination in the detection of wound infection by ENose.
机译:背景干扰在通过电子鼻(ENose)检测伤口感染中是严重且普遍的问题。当将小鼠用作实验对象时,背景干扰,即小鼠本身的气味非常强,并且有用的信息经常被埋在其中。提出了一种基于ENose结合基于参考向量的独立分量分析(ICA)去噪算法的消除背景干扰和检测伤口感染的新方法。它利用ICA分解传感器阵列的每个信号并提取独立分量,然后通过与参考向量的相关性来区分有用的信号源和背景干扰。消除了背景干扰的独立组件用作径向基函数(RBF)网络的输入以进行区分。结果表明,该方法对于消除ENose检测伤口感染的背景干扰是有效和实用的。

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