A method to standardize the temperature for near infrared spectra of the indigo pigment in non-dairy cream based on symbolic regression

Author:

Zhang Yun12ORCID,Liu Jun123ORCID,Tan Zheng lin45ORCID,Jiang Ming Yi2ORCID

Affiliation:

1. Hubei Key Laboratory of Intelligent Robot, Wuhan Institute of Technology, Wuhan, China

2. School of Computer Science & Engineering, Wuhan Institute of Technology, Wuhan, China

3. Key Laboratory of Biomarkers and in Vitro Diagnosis Translation of Zhejiang Province, Zhejiang, China

4. Department of Cuisine and Nutrition, Hubei University of Economics, Wuhan, China

5. Hubei Chu Cuisine Research Institute, Wuhan, China

Abstract

Near infrared (NIR) spectroscopy is sensitive to physical conditions such as sample temperature, meaning that rapid detection methods based on NIR spectroscopy are significantly influenced by temperature. To address this challenge, symbolic regression was employed to mitigate the effects of temperature. The Weighted Windowed Adaptive Optimization algorithm was proposed and combined with the Sequential Projection Algorithm to extract temperature-related feature points and remove redundant data. Subsequent 3D modeling of these feature points revealed that absorbance alterations due to temperature comprised two distinct segments. Consequently, based on symbolic regression, the temperature standardization algorithm was devised to generate piecewise equations. This algorithm surpassed genetic programming and non-segmented methods in performance metrics. The piecewise function equations generated by the algorithm were used to regress the absorbance at different temperatures to the standard temperature. Non-dairy cream, with different indigo pigment contents, was temperature standardized using a piecewise function to obtain spectra at two standard temperatures; 18°C and 28°C. The r2 for the quantitative regression model improved from 0.71 to 0.95 at 18°C and from 0.63 to 0.85 at 28°C. The temperature standardization method offers interpretable equations for spectra that model the complex changes with temperature, factoring out the temperature variation, thereby facilitating the practical use of NIR spectroscopy in rapid detection applications.

Funder

the Opening Fund of Key Laboratory of Biomarkers and In Vitro Diagnosis Translation of Zhejiang province

Science and Technology Development Funds of the State Administration of Market Regulation

the Industry-University Cooperation and Collaborative Education Project of the Ministry of Education

Industry-University-Research Innovation Fund of Science and Technology Development Center

the Fourteenth Graduate Innovation Fund of Wuhan Institute of Technology

the Foundation of Hubei Provincial Key Laboratory of Intelligent Robot

the Natural Science Foundation of Hubei Province

Publisher

SAGE Publications

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