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Article

Total Soluble Solids in Grape Must Estimation Using VIS-NIR-SWIR Reflectance Measured in Fresh Berries

by
Karen Brigitte Mejía-Correal
1,*,
Víctor Marcelo
2,
Enoc Sanz-Ablanedo
1 and
José Ramón Rodríguez-Pérez
1
1
Grupo de Investigación en Geomática e Ingeniería Cartográfica (GEOINCA), Universidad de León, Avenida de Astorga sn, 24401 Ponferrada, León, Spain
2
Departamento de Ingeniería y Ciencias Agrarias, Universidad de León, Avenida de Astorga sn, 24401 Ponferrada, León, Spain
*
Author to whom correspondence should be addressed.
Agronomy 2023, 13(9), 2275; https://doi.org/10.3390/agronomy13092275
Submission received: 24 July 2023 / Revised: 23 August 2023 / Accepted: 26 August 2023 / Published: 29 August 2023
(This article belongs to the Special Issue Advances in Field Spectroscopy in Agriculture)

Abstract

Total soluble solids (TSS) is a key variable taken into account in determining optimal grape maturity for harvest. In this work, partial least square (PLS) regression models were developed to estimate TSS content for Godello, Verdejo (white), Mencía, and Tempranillo (red) grape varieties based on diffuse spectroscopy measurements. To identify the most suitable spectral range for TSS prediction, the regression models were calibrated for four datasets that included the following spectral ranges: 400–700 nm (visible), 701–1000 nm (near infrared), 1001–2500 nm (short wave infrared) and 400–2500 nm (the entire spectral range). We also tested the standard normal variate transformation technique. Leave-one-out cross-validation was implemented to evaluate the regression models, using the root mean square error (RMSE), coefficient of determination (R2), ratio of performance to deviation (RPD), and the number of factors (F) as evaluation metrics. The regression models for the red varieties were generally more accurate than the models of those for the white varieties. The best regression model was obtained for Mencía (red): R2 = 0.72, RMSE = 0.55 °Brix, RPD = 1.87, and factors n = 7. For white grapes, the best result was achieved for Godello: R2 = 0.75, RMSE = 0.98 °Brix, RPD = 1.97, and factors n = 7. The methodology used and the results obtained show that it is possible to estimate TSS content in grapes using diffuse spectroscopy and regression models that use reflectance values as predictor variables. Spectroscopy is a non-invasive and efficient technique for determining optimal grape maturity for harvest.
Keywords: VIS-NIR spectroscopy; PLS regression; viticulture; total soluble solids VIS-NIR spectroscopy; PLS regression; viticulture; total soluble solids

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MDPI and ACS Style

Mejía-Correal, K.B.; Marcelo, V.; Sanz-Ablanedo, E.; Rodríguez-Pérez, J.R. Total Soluble Solids in Grape Must Estimation Using VIS-NIR-SWIR Reflectance Measured in Fresh Berries. Agronomy 2023, 13, 2275. https://doi.org/10.3390/agronomy13092275

AMA Style

Mejía-Correal KB, Marcelo V, Sanz-Ablanedo E, Rodríguez-Pérez JR. Total Soluble Solids in Grape Must Estimation Using VIS-NIR-SWIR Reflectance Measured in Fresh Berries. Agronomy. 2023; 13(9):2275. https://doi.org/10.3390/agronomy13092275

Chicago/Turabian Style

Mejía-Correal, Karen Brigitte, Víctor Marcelo, Enoc Sanz-Ablanedo, and José Ramón Rodríguez-Pérez. 2023. "Total Soluble Solids in Grape Must Estimation Using VIS-NIR-SWIR Reflectance Measured in Fresh Berries" Agronomy 13, no. 9: 2275. https://doi.org/10.3390/agronomy13092275

APA Style

Mejía-Correal, K. B., Marcelo, V., Sanz-Ablanedo, E., & Rodríguez-Pérez, J. R. (2023). Total Soluble Solids in Grape Must Estimation Using VIS-NIR-SWIR Reflectance Measured in Fresh Berries. Agronomy, 13(9), 2275. https://doi.org/10.3390/agronomy13092275

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