光谱学与光谱分析 |
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Study on Freshness Evaluation of Ice-Stored Large Yellow Croaker (Pseudosciaena Crocea) Using Near Infrared Spectroscopy |
LIU Yuan, CHEN Wei-hua, HOU Qiao-juan, WANG Xi-chang*, DONG Ruo-yan, WU Hao |
College of Food Science and Technology, Shanghai Engineering Research Center of Aquatic-Product Processing & Preservation, Shanghai Ocean University, Shanghai 201306, China |
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Abstract Near infrared spectroscopy (NIR) was used in this experiment to evaluate the freshness of ice-stored large yellow croaker (pseudosciaena crocea) during different storage periods. And the TVB-N was used as an index to evaluate the freshness. Through comparing the correlation coefficent and standard deviations of calibration set and validation set of models established by singly and combined using of different pretreatment methods, different modeling methods and different wavelength region, the best TVB-N models of ice-stored large yellow croaker sold in the market were established to predict the freshness quickly. According to the research, the model shows that the best performance could be established by using the normalization by closure (Ncl) with 1st derivative (Db1) and normalization to unit length (Nle) with 1st derivative as the pretreated method and partial least square (PLS) as the modeling method combined with choosing the wavelength region of 5 000~7 144, and 7 404~10 000 cm-1. The calibration model gave the correlation coefficient of 0.992, with a standard error of calibration of 1.045 and the validation model gave the correlation coefficient of 0.999, with a standard error of prediction of 0.990. This experiment attempted to combine several pretreatment methods and choose the best wavelength region, which has got a good result. It could have a good prospective application of freshness detection and quality evaluation of large yellow croaker in the market.
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Received: 2013-06-21
Accepted: 2013-11-03
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Corresponding Authors:
WANG Xi-chang
E-mail: xcwang@shou.edu.cn
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