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  5. Chestnut Cultivar Identification through the Data Fusion of Sensory Quality and FT-NIR Spectral Data

Chestnut Cultivar Identification through the Data Fusion of Sensory Quality and FT-NIR Spectral Data

Author(s)
Corona, Piermaria  
Frangipane, Maria Teresa  
Moscetti, Roberto  
Lo Feudo, Gabriella
Castellotti, Tatiana
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Date Issued
2021
Type
article
Volume
10
Issue
11
DOI
10.3390/foods10112575
Journal
FOODS  
Abstract
The world production of chestnuts has significantly grown in recent decades. Consumer attitudes, increasingly turned towards healthy foods, show a greater interest in chestnuts due to their health benefits. Consequently, it is important to develop reliable methods for the selection of high-quality products, both from a qualitative and sensory point of view. In this study, Castanea spp. fruits from Italy, namely Sweet chestnut cultivar and the Marrone cultivar, were evaluated by an official panel, and the responses for sensory attributes were used to verify the correlation to the near-infrared spectra. Data fusion strategies have been applied to take advantage of the synergistic effect of the information obtained from NIR and sensory analysis. Large nuts, easy pellicle removal, chestnut aroma, and aromatic intensity render Marrone cv fruits suitable for both the fresh market and candying, i.e., marron glacé. Whereas, sweet chestnut samples, due to their characteristics, have the potential to be used for secondary food products, such as jam, mash chestnut, and flour. The research lays the foundations for a superior data fusion approach for chestnut identification in terms of classification sensitivity and specificity, in which sensory and spectral approaches compensate each other's drawbacks, synergistically contributing to an excellent result.
Handle
http://hdl.handle.net/2067/46979
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foods-10-02575.pdf

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