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Artificial neural networks methods applied to conductometric microhotplate data for the identification of the type and relative concentration of chemical warfare agents

机译:人工神经网络方法应用于电导微孔板数据以鉴定化学战剂的类型和相对浓度

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Response data from microhotplate (MHP) sensor arrays were measured for various chemical warfare (CW) agents in several concentrations in dry hair. Efficient large-scale artificial neural networks (ANN) modeling has been evaluated as a method for the classification and concentration prediction of the CW agents based on the MHP data. Four MHP sensor elements, two pairs of SnO/sub 2/ and two pairs of TiO/sub 2/ were operated in a pulsed, ramped temperature mode to generate the data used. The CW agents and related compounds tested were tabun (GA), sarin (GB), sulfur mustard (HD), and chloroethyl-ethyl-sulfide (CES), in four concentration levels in dry hair, between several nmole/mole (ppb) to several /spl mu/mole/mole (ppm). Recursive ANN pruning and re-training techniques were used to identify the more relevant inputs, among the original 80 inputs (different sensor elements and temperatures). ANN models with 6-15 inputs produced good classification between the different CW agents. Other ANN models, trained for each agent, gave good prediction values for the concentrations of the CW agents.
机译:测量来自微壳体(MHP)传感器阵列的响应数据,用于各种化学战(CW)药物中的多种浓度在干燥的头发中。高效的大规模人工神经网络(ANN)建模已被评估为基于MHP数据的CW代理的分类和浓缩预测的方法。四个MHP传感器元件,两对SNO / SUB 2 /和两对TIO / SUB 2 /在脉冲斜坡的温度模式下操作以产生所使用的数据。测试的CW试剂和相关化合物是Tabun(Ga),Sarin(GB),硫芥子(HD)和氯乙基 - 硫醚(CES),在几种Nmole / mole(PPB)之间的四种浓度水平。到几个/ spl mu / mole / mole(ppm)。递归安修剪和重新训练技术用于识别更相关的输入,在原件80输入(不同的传感器元件和温度)中。 ANN型号,具有6-15个输入,在不同的CW代理之间产生了良好的分类。其他ANN模型,针对每个试剂培训,对CW剂的浓度进行了良好的预测值。

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