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Wavelet neural networks to resolve the overlapping signal in the voltammetric determination of phenolic compounds
Authors:Gutiérrez Juan Manuel  Gutés Albert  Céspedes Francisco  del Valle Manuel  Muñoz Roberto
Affiliation:Bioelectronics Section, Department of Electrical Engineering, CINVESTAV, 07360 Mexico DF, Mexico.
Abstract:
Three phenolic compounds, i.e. phenol, catechol and 4-acetamidophenol, were simultaneously determined by voltammetric detection of its oxidation reaction at the surface of an epoxy-graphite transducer. Because of strong signal overlapping, Wavelet Neural Networks (WNN) were used in data treatment, in a combination of chemometrics and electrochemical sensors, already known as the electronic tongue concept. To facilitate calibration, a set of samples (concentration of each phenol ranging from 0.25 to 2.5mM) was prepared automatically by employing a Sequential Injection System. Phenolic compounds could be resolved with good prediction ability, showing correlation coefficients greater than 0.929 when the obtained values were compared with those expected for a set of samples not employed for training.
Keywords:
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