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首页> 外文期刊>Analytica chimica acta >Analysis of amoxicillin in human urine by photo-activated generation of fluorescence excitation-emission matrices and artificial neural networks combined with residual bilinearization
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Analysis of amoxicillin in human urine by photo-activated generation of fluorescence excitation-emission matrices and artificial neural networks combined with residual bilinearization

机译:光活化荧光激发发射矩阵和人工神经网络结合残余双线性化分析人尿中的阿莫西林

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Fluorescence excitation-emission data recorded for amoxicillin after photo-activated reaction with periodate have been processed by a novel second-order multivariate method based on the combination of artificial neural networks and residual bilinearization (ANN/RBL),since the signals bear a strong non-linear relation with the analyte concentration.The selected chemometric methodology is employed for the first time to evaluate experimental non-linear second-order spectral information.Due to severe overlapping between the emission profiles for the analyte reaction product and for the urine background,calibration was done using different spiked urine samples.This allowed for the determination of amoxicillin in test spiked urines,other than those employed for calibration.When new urine samples containing a fluorescent anti-inflammatory were analyzed,accurate prediction in the presence of unexpected components required the achievement of the second-order advantage,which is provided by the post-training RBL procedure.Amoxicillin was also determined by ANN/RBL in a series of real urine samples,which allowed one to perform a comparison study with the reference high-performance liquid chromatographic technique.
机译:基于人工神经网络和残差双线性化(ANN / RBL)的新型二阶多元方法处理了阿莫西林与高碘酸盐光活化反应后记录的荧光激发发射数据,因为该信号具有较强的非与分析物浓度呈线性关系。首次使用所选的化学计量学方法评估实验非线性二阶光谱信息。由于分析物反应产物和尿液背景的发射曲线之间存在严重重叠,因此需要进行校准使用不同的加标尿液样品进行分析。这可以用于测定加标尿液中的阿莫西林(用于校准的尿液除外)。分析含有荧光抗炎剂的新尿液样品时,需要在存在意外成分的情况下进行准确预测p提供的二阶优势的实现还通过ANN / RBL测定了一系列真实尿液样品中的阿莫西林,从而可以与参考高效液相色谱技术进行比较研究。

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