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Concentration Estimation of Industrial Gases for Electronic Nose Applications

机译:电子鼻应用工业气体的浓度估算

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Sensors drift is one of the most critical challenges while designing an Electronic Nose System (ENS). The discrimination and quantification of gases in the presence of drift is challenging and requires either (i) system recalibration, (ii) domain transformations or (iii) data from target domain. This paper proposes a heuristic optimization technique integrated with a pattern recognition model to estimate the concentration of different industrial gases in the presence of small experimental drift. The proposed method is validated against an experimental data acquired with an array of 16 screen-protected gas sensors. Samples from 6 volatile compounds; ethylene, ethanol, ammonia, acetone, acetaldehyde and toluene are tested to validate the proposed solution. Besides giving accurate performance in terms of concentration estimation the proposed solution does not require system recalibration, domain transformations or target domain data and meanwhile it also reduces the computational complexity of the system.
机译:在设计电子鼻系统(ENS)时,传感器漂移是最关键的挑战之一。在存在漂移的情况下,对气体进行判别和定量分析具有挑战性,并且需要(i)系统重新校准,(ii)域转换或(iii)来自目标域的数据。本文提出了一种与模式识别模型相结合的启发式优化技术,以在实验漂移较小的情况下估算不同工业气体的浓度。相对于由16个屏幕保护气体传感器阵列获得的实验数据验证了该方法的有效性。 6种挥发性化合物的样品;对乙烯,乙醇,氨,丙酮,乙醛和甲苯进行了测试,以验证所提出的解决方案。除了在浓度估计方面提供准确的性能外,所提出的解决方案不需要系统重新校准,域转换或目标域数据,同时还降低了系统的计算复杂性。

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