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Suppression of Strong Background Interference on E-Nose Sensors in an Open Country Environment
Fengchun Tian1, Jian Zhang2, Simon X Yang3
1College of Communication Engineering, Chongqing University, 174 Sha Pingba, Chongqing 400044, China. FengchunTian@cqu.edu.cn.
Abstract:
The feature extraction technique for an electronic nose (e-nose) applied in tobacco smell detection in an open country/outdoor environment with periodic background strong interference is studied in this paper. Principal component analysis (PCA), Independent component analysis (ICA), re-filtering and a priori knowledge are combined to separate and suppress background interference on the e-nose. By the coefficient of multiple correlation (CMC), it can be verified that a better separation of environmental temperature, humidity, and atmospheric pressure variation related background interference factors can be obtained with ICA. By re-filtering according to the on-site interference characteristics a composite smell curve was obtained which is more related to true smell information based on the tobacco curer's experience.
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