2017
DOI: 10.1002/jsfa.8746
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Real‐time prediction of pre‐cooked Japanese sausage color with different storage days using hyperspectral imaging

Abstract: HSI combined with PLSR and FSMR can be used to quantify and visualize evolution of sausage redness under different storage days. © 2017 Society of Chemical Industry.

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Cited by 27 publications
(24 citation statements)
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“…In order to simplify the models and speed up the data analysis, the wavelengths which provide the most important useful information were selected. In this way, the uninformative wavelengths were eliminated (Xu and others ; Feng and others ), computing speed enhanced (Cheng and others , ) and the spectral dimension was reduced to a large extent (Wu and others ; Jia and others ). Furthermore, the feature wavelengths selection will facilitate the design an optimized online multispectral imaging system (Kamruzzaman and others , ; Feng and others ).…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…In order to simplify the models and speed up the data analysis, the wavelengths which provide the most important useful information were selected. In this way, the uninformative wavelengths were eliminated (Xu and others ; Feng and others ), computing speed enhanced (Cheng and others , ) and the spectral dimension was reduced to a large extent (Wu and others ; Jia and others ). Furthermore, the feature wavelengths selection will facilitate the design an optimized online multispectral imaging system (Kamruzzaman and others , ; Feng and others ).…”
Section: Resultsmentioning
confidence: 99%
“…It includes different combinations of preprocessing transformations and regression algorithms (Qi and others ). The preprocessing transfromations generally used in hyperspectral imaging are normalization (N), multiplicative scatter correction (MSC), standard normal variate (SNV), first derivative (1st D), and second derivative (2nd D) (Feng and others ). Normalization can enhance the spectral features (Pan and others ) and render the sepctra to have an equal area under the curve to easily compare the features of the spectra in the same plot (Skjelvareid and others ).…”
Section: Methodsmentioning
confidence: 99%
“…Consequently, HSI should be implemented further down the production line in future work, once the products are completely processed and packaged, to ensure safe products for consumers. Although not the same as imaging through packaging, real-time HSI has been successfully applied to imaging meat through sausage casing ( Feng et al., 2018 ). Future work is required to assess HSI utility for successfully imaging poultry products through packaging.…”
Section: Discussionmentioning
confidence: 99%
“…[21,22] A typical hyperspectral image consists of a series of images of different wavelengths, and each pixel of image is a spectrum on this position, which covers the Vis/NIR range. HSI has been used to detect many important quality attributes of agricultural materials, such as color of sausage, [23] defect on jujube, [24] allicin, and soluble solid content of garlic, [25] chilling injury of peaches, [26,27] SSC and firmness of pear, [28] contaminants on wheat [29] and internal qualities of apples. [30] Therefore, the use of hyperspectral imaging has great potential for quality assessments of agricultural materials.…”
Section: Introductionmentioning
confidence: 99%