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Meat Sci ; 96(1): 14-20, 2014 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-23896132

RESUMO

An attempt to classify dry-cured hams according to the maturation time on the basis of near infrared (NIR) spectra was studied. The study comprised 128 samples of biceps femoris (BF) muscle from dry-cured hams matured for 10 (n=32), 12 (n=32), 14 (n=32) or 16 months (n=32). Samples were minced and scanned in the wavelength range from 400 to 2500 nm using spectrometer NIR System model 6500 (Silver Spring, MD, USA). Spectral data were used for i) splitting of samples into the training and test set using 2D Kohonen artificial neural networks (ANN) and for ii) construction of classification models using counter-propagation ANN (CP-ANN). Different models were tested, and the one selected was based on the lowest percentage of misclassified test samples (external validation). Overall correctness of the classification was 79.7%, which demonstrates practical relevance of using NIR spectroscopy and ANN for dry-cured ham processing control.


Assuntos
Dessecação , Manipulação de Alimentos/métodos , Produtos da Carne/classificação , Redes Neurais de Computação , Espectroscopia de Luz Próxima ao Infravermelho , Animais , Modelos Biológicos , Músculo Esquelético/química , Reprodutibilidade dos Testes , Suínos
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