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An efficient approach for preprocessing data from a large-scale chemical sensor array.

机译:一种从大规模化学传感器阵列预处理数据的有效方法。

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摘要

In this paper, an artificial olfactory system (Electronic Nose) that mimics the biological olfactory system is introduced. The device consists of a Large-Scale Chemical Sensor Array (16; 384 sensors, made of 24 different kinds of conducting polymer materials)that supplies data to software modules, which perform advanced data processing. In particular, the paper concentrates on the software components consisting, at first, of a crucial step that normalizes the heterogeneous sensor data and reduces their inherent noise. Cleaned data are then supplied as input to a data reduction procedure that extracts the most informative and discriminant directions in order to get an efficient representation in a lower dimensional space where it is possible to more easily find a robust mapping between the observed outputs and the characteristics of the odors in input to the device. Experimental qualitative proofs of the validity of the procedure are given by analyzing data acquired for two different pure analytes and their binary mixtures. Moreover, a classification task is performed in order to explore the possibility of automatically recognizing pure compounds and to predict binary mixture concentrations.
机译:本文介绍了一种模仿生物嗅觉系统的人工嗅觉系统(电子鼻)。该设备包含一个大型化学传感器阵列(16个; 384个传感器,由24种不同的导电聚合物材料制成),可将数据提供给软件模块,以执行高级数据处理。特别是,本文着重于软件组件,该软件组件首先包括关键步骤,该步骤对异类传感器数据进行归一化并降低其固有噪声。然后,将干净的数据作为输入,提供给数据缩减程序,以提取信息最多和最有区别的方向,以便在较低维度的空间中获得有效的表示,从而可以更轻松地在观察到的输出和特征之间找到可靠的映射输入设备的异味。通过分析从两种不同的纯分析物及其二元混合物获得的数据,给出了该程序有效性的实验定性证明。此外,执行分类任务是为了探索自动识别纯化合物并预测二元混合物浓度的可能性。

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