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Models to improve the non-destructive analysis of persimmon fruit properties by VIS/NIR spectrometry.

  • Autores: Giuseppe Altieri, Francesco Genovese, Antonella Tauriello, Giovanni Carlo Di Renzo
  • Localización: Journal of the science of food and agriculture, ISSN 0022-5142, Vol. 97, Nº 15, 2017, págs. 5302-5310
  • Idioma: inglés
  • Texto completo no disponible (Saber más ...)
  • Resumen
    • Visible-near-infrared spectrometry is a technique suitable for assessing chemical and physiological properties of fruit. Some models of calibration/prediction have been tested in order to assess the feasibility of a visible-near-infrared sensor in order to monitor persimmon fruit colour, firmness, soluble solids, titratable acidity and soluble tannins.; Results: Five regression models were investigated: principal component, partial least squares, stepwise, support vector machines and ensembles of trees. These models were assessed by a 10-fold cross-validation with a new strategy for both outlier removal and wavelength reduction; furthermore, their statistical significance was evaluated by 100 Monte Carlo simulation runs. Principal component regression allowed us to build excellent and/or very good fit/prediction models. The results (in terms of RPD as standard deviation to performance standard error ratio) are: 9.23 (±0.26) for colour index, 10.18 (±0.37) for firmness, 7.15 (±0.28) for soluble solids content, 7.87 (±0.31) for titratable acidity and 8.91 (±0.33) for soluble tannins content.; Conclusion: The proposed strategy, for outlier removal and wavelength reduction, allowed the achievement of useful results. Principal component regression fit/prediction capability produced excellent results. Conversely, partial least squares regression showed fair/poor results and the remaining tested models performed badly on real data. © 2017 Society of Chemical Industry.; © 2017 Society of Chemical Industry.


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