Multi-task convolutional neural network for simultaneous monitoring of lipid and protein oxidative damage in frozen-thawed pork using hyperspectral imaging
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作者:
Cheng, Jiehong
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Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R ChinaJiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Cheng, Jiehong
[1
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Sun, Jun
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机构:
Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R ChinaJiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Sun, Jun
[1
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Yao, Kunshan
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机构:
Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R ChinaJiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Yao, Kunshan
[1
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Xu, Min
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Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R ChinaJiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Xu, Min
[1
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Dai, Chunxia
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Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R ChinaJiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Dai, Chunxia
[1
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机构:
[1] Jiangsu Univ, Sch Elect & Informat Engn, Zhenjiang 212013, Peoples R China
Lipid and protein oxidation are the main causes of meat deterioration during freezing. Traditional methods using hyperspectral imaging (HSI) need to train multiple independent models to predict multiple attributes, which is complex and time-consuming. In this study, a multi-task convolutional neural network (CNN) model was developed for visible near-infrared HSI data (400-1002 nm) of 240 pork samples treated with different freeze -thaw cycles (0-9 cycles) to evaluate the feasibility of simultaneously monitoring lipid oxidation (thiobarbituric acid reactive substance content) and protein oxidation (carbonyl content) in pork. The performance of the commonly used partial least squares regression (PLSR) model based on the spectra after pre-processing (Standard normal variate, Savitzky-Golay derivative, and Savitzky-Golay smoothing) and feature selection (Regression co-efficients) and single-output CNN model was compared. The results showed that the multi-task CNN model achieved the optimal prediction accuracies for lipid oxidation (R2p = 0.9724, RMSEP = 0.0227, and RPD = 5.2579) and protein oxidation (R2p = 0.9602, RMSEP = 0.0702, and RPD = 4.6668). In final, the changes of lipid and protein oxidation of pork in different freeze-thaw cycles were successfully visualized. In conclusion, the combination of HSI and multi-task CNN method shows the potential of end-to-end prediction of pork oxidative damage. This study provides a new, convenient and automated technique for meat quality detection in the food industry.
机构:
Shihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Shihezi Univ, Key Lab Oasis Ecol Agr, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Yan, Tianying
Xu, Wei
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机构:
Shihezi Univ, Coll Agr, Shihezi, Peoples R China
Xinjiang Prod & Construct Corps Key Lab Special F, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Xu, Wei
Lin, Jiao
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机构:
Shihezi Univ, Coll Agr, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Lin, Jiao
Duan, Long
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机构:
Shihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Shihezi Univ, Key Lab Oasis Ecol Agr, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Duan, Long
Gao, Pan
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机构:
Shihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Shihezi Univ, Key Lab Oasis Ecol Agr, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Gao, Pan
Zhang, Chu
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机构:
Zhejiang Univ, Coll Biosyst Engn & Food Sci, Hangzhou, Peoples R China
Minist Agr & Rural Affairs, Key Lab Spect Sensing, Hangzhou, Peoples R China
Huzhou Univ, Sch Informat Engn, Huzhou, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China
Zhang, Chu
Lv, Xin
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机构:
Shihezi Univ, Key Lab Oasis Ecol Agr, Shihezi, Peoples R China
Shihezi Univ, Coll Agr, Shihezi, Peoples R ChinaShihezi Univ, Coll Informat Sci & Technol, Shihezi, Peoples R China