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Development of a Novel HS-GC/MS Method Using the Total Ion Spectra Combined with Machine Learning for the Intelligent and Automatic Evaluation of Food-Grade Paraffin Wax Odor Level

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URI: http://hdl.handle.net/10498/33661

ISSN: 2304-8158

ISSN: 10.3390/FOODS13091352

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Author/s
Barea Sepúlveda, MartaAuthority UCA; Pérez Calle, José LuisAuthority UCA; Ferreiro González, MartaAuthority UCA; Palma Lovillo, MiguelAuthority UCA
Date
2024
Department
Química Analítica
Source
Foods - 2024, Vol. 13 n.9
Abstract
The intensity of the odor in food-grade paraffin waxes is a pivotal quality characteristic, with odor panel ratings currently serving as the primary criterion for its assessment. This study presents an innovative method for assessing odor intensity in food-grade paraffin waxes, employing headspace gas chromatography with mass spectrometry (HS/GC-MS) and integrating total ion spectra with advanced machine learning (ML) algorithms for enhanced detection and quantification. Optimization was conducted using Box–Behnken design and response surface methodology, ensuring precision with coefficients of variance below 9%. Analytical techniques, including hierarchical cluster analysis (HCA) and principal component analysis (PCA), efficiently categorized samples by odor intensity. The Gaussian support vector machine (SVM), random forest, partial least squares regression, and support vector regression (SVR) algorithms were evaluated for their efficacy in odor grade classification and quantification. Gaussian SVM emerged as superior in classification tasks, achieving 100% accuracy, while Gaussian SVR excelled in quantifying odor levels, with a coefficient of determination (R2) of 0.9667 and a root mean square error (RMSE) of 6.789. This approach offers a fast, reliable, robust, objective, and reproducible alternative to the current ASTM sensory panel assessments, leveraging the analytical capabilities of HS-GC/MS and the predictive power of ML for quality control in the petrochemical sector’s food-grade paraffin waxes.
Subjects
Box–Behnken design; food packaging; food-grade paraffin waxes; gas chromatography–mass spectrometry; headspace; machine learning; odor intensity; total ion spectra
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  • Articulos Científicos Quim. Ana. [393]
Atribución 4.0 Internacional
This work is under a Creative Commons License Atribución 4.0 Internacional

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