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Review | Publishing Language: Chinese | Open Access

Progress in the Application of Chemometrics in the Field of Food Flavor

Qian ZHANG1 Haoying HAN1Fanyu MENG1Yadong WANG1Bei WANG1 ( )Tao JIANG2 ( )
School of Food and Health, Beijing Technology and Business University, Beijing 100048, China
Lyon Neuroscience Research Centre, University of Burgundy, Bron 69500, France
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Abstract

Flavor substances affect the sensory properties of food and consumer choices, and flavor substance analysis is crucial for improving food quality and developing new products. However, the vast amount of flavor substance data and inappropriate statistical analysis greatly limit the development of this field. Therefore, it is crucial to use new chemometrics methods, such as artificial intelligence algorithms, correctly and reasonably to obtain effective information in this field. In recent years, chemometrics methods have been widely applied in food research. In addition to dimensionality reduction, classification and regression methods, various neural network methods have also emerged in the field of food research. However, a summary of their reasonable application is lacking. Therefore, this article summarizes the statistical analysis methods available to study food flavor, including principal component analysis, linear discriminant analysis, linear regression methods such as partial least squares regression, and nonlinear methods such as fuzzy logic and artificial neural networks, explains their principles and provides application examples. This article aims to provide effective methods and ideas for further research on chemometrics in the field of food flavor.

CLC number: TS201 Document code: A Article ID: 1002-6630(2024)21-0307-09

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Food Science
Pages 307-315

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Cite this article:
ZHANG Q, HAN H, MENG F, et al. Progress in the Application of Chemometrics in the Field of Food Flavor. Food Science, 2024, 45(21): 307-315. https://doi.org/10.7506/spkx1002-6630-20240328-214

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Received: 28 March 2024
Published: 15 November 2024
© Beijing Academy of Food Sciences 2024.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).