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Published on: February 14, 2014
Fast spark discharge-laser-induced breakdown spectroscopy method for rice botanic origin determination
Michael Pérez-Rodríguez1, Pamela Maia Dirchwolf2, Tiago Varão Silva3
1Institute of Basic and Applied Chemistry of the Northeast of Argentina (IQUIBA-NEA), National Scientific and Technical Research Council (CONICET), Faculty of Exact and Natural Science and Surveying National University of the Northeast - UNNE, Av. Libertad 5470, 3400 Corrientes, Argentina; Chemistry Institute of Araraquara, São Paulo State University - UNESP, R. Prof. Francisco Degni 55, 14800-900 Araraquara, SP, Brazil.
Abstract:
A simple, fast, and efficient spark discharge-laser-induced breakdown spectroscopy (SD-LIBS) method was developed for determining rice botanic origin using predictive modeling based on support vector machine (SVM). Seventy-two samples from four rice varieties (Guri, Irga 424, Puitá, and Taim) were analyzed by SD-LIBS. Spectral lines of C, Ca, Fe, Mg, N and Na were selected as input variables for prediction model fitting. The SVM algorithm parameters were optimized using a central composite design (CCD) to find the better classification performance. The optimum model for discriminating rice samples according to their botanical variety was obtained using C = 5.25 and γ = 0.119. This model achieved 96.4% of correct predictions in test samples and showed sensitivities and specificities per class within the range of 92-100%. The developed method is robust and eco-friendly for rice botanic identification since its prediction results are consistent and reproducible and its application does not generate chemical waste.
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