Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology

In order to establish a standardized method that can quickly and nondestructively identify the color changes in the process of mutton roasting, this study combined three algorithms (mean value algorithm, K-means algorithm and K-means+image noise reduction algorithm) based on machine vision technolog...

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Main Authors: Bo WANG, Xiaoyan HU, Fangzhu YU, Dengyong LIU
Format: Article
Language:zho
Published: The editorial department of Science and Technology of Food Industry 2022-02-01
Series:Shipin gongye ke-ji
Subjects:
Online Access:http://www.spgykj.com/cn/article/doi/10.13386/j.issn1002-0306.2021070346
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author Bo WANG
Xiaoyan HU
Fangzhu YU
Dengyong LIU
author_facet Bo WANG
Xiaoyan HU
Fangzhu YU
Dengyong LIU
author_sort Bo WANG
collection DOAJ
description In order to establish a standardized method that can quickly and nondestructively identify the color changes in the process of mutton roasting, this study combined three algorithms (mean value algorithm, K-means algorithm and K-means+image noise reduction algorithm) based on machine vision technology to make the color recognition colourimetric card and carried out online monitoring of the color of roasted mutton. The results showed that the colorimetric cards made by the three algorithms could show the color changes in the process of mutton roasting. In order to clarify the accuracy of the three colorimetric cards, K-medoids algorithm combined with sensory experiment was used to verify the accuracy of color recognition of the colorimetric cards. The verification results of colourimetric card recognition accuracy using K-medoids algorithm showed that the accuracy of mean algorithm was 85.60%, that of K-means algorithm was 95.70%, and that of K-means algorithm+image noise reduction algorithm was 93.40%. The verification results of sensory experiments showed that the recognition accuracy of mean algorithm, K-means algorithm and K-means algorithm+image noise reduction algorithm were 67.32%, 73.71% and 68.74% respectively, the comparison showed that the color recognition accuracy of colourimetric card made by K-means algorithm was the highest for roasted mutton. The study proved that the colorimetric card can be used as the color evaluation criterion and provides guidance for barbecue meat processing. It had a good application prospect.
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spelling doaj.art-3c519ecc9407451585f8d70f33e609de2022-12-22T04:39:09ZzhoThe editorial department of Science and Technology of Food IndustryShipin gongye ke-ji1002-03062022-02-01433101710.13386/j.issn1002-0306.20210703462021070346-3Making Roasted Mutton Colourimetric Card Based on Machine Vision TechnologyBo WANG0Xiaoyan HU1Fangzhu YU2Dengyong LIU3National & Local Joint Engineering Research Center of Storage, Processing and Safety Control Technology for Fresh Agricultural and Aquatic Products, College of Food Science and Technology, Bohai University, Jinzhou 121013, ChinaNational & Local Joint Engineering Research Center of Storage, Processing and Safety Control Technology for Fresh Agricultural and Aquatic Products, College of Food Science and Technology, Bohai University, Jinzhou 121013, ChinaNational & Local Joint Engineering Research Center of Storage, Processing and Safety Control Technology for Fresh Agricultural and Aquatic Products, College of Food Science and Technology, Bohai University, Jinzhou 121013, ChinaNational & Local Joint Engineering Research Center of Storage, Processing and Safety Control Technology for Fresh Agricultural and Aquatic Products, College of Food Science and Technology, Bohai University, Jinzhou 121013, ChinaIn order to establish a standardized method that can quickly and nondestructively identify the color changes in the process of mutton roasting, this study combined three algorithms (mean value algorithm, K-means algorithm and K-means+image noise reduction algorithm) based on machine vision technology to make the color recognition colourimetric card and carried out online monitoring of the color of roasted mutton. The results showed that the colorimetric cards made by the three algorithms could show the color changes in the process of mutton roasting. In order to clarify the accuracy of the three colorimetric cards, K-medoids algorithm combined with sensory experiment was used to verify the accuracy of color recognition of the colorimetric cards. The verification results of colourimetric card recognition accuracy using K-medoids algorithm showed that the accuracy of mean algorithm was 85.60%, that of K-means algorithm was 95.70%, and that of K-means algorithm+image noise reduction algorithm was 93.40%. The verification results of sensory experiments showed that the recognition accuracy of mean algorithm, K-means algorithm and K-means algorithm+image noise reduction algorithm were 67.32%, 73.71% and 68.74% respectively, the comparison showed that the color recognition accuracy of colourimetric card made by K-means algorithm was the highest for roasted mutton. The study proved that the colorimetric card can be used as the color evaluation criterion and provides guidance for barbecue meat processing. It had a good application prospect.http://www.spgykj.com/cn/article/doi/10.13386/j.issn1002-0306.2021070346roasted muttoncolorimetric cardmachine visioncolorimage identification
spellingShingle Bo WANG
Xiaoyan HU
Fangzhu YU
Dengyong LIU
Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
Shipin gongye ke-ji
roasted mutton
colorimetric card
machine vision
color
image identification
title Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
title_full Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
title_fullStr Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
title_full_unstemmed Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
title_short Making Roasted Mutton Colourimetric Card Based on Machine Vision Technology
title_sort making roasted mutton colourimetric card based on machine vision technology
topic roasted mutton
colorimetric card
machine vision
color
image identification
url http://www.spgykj.com/cn/article/doi/10.13386/j.issn1002-0306.2021070346
work_keys_str_mv AT bowang makingroastedmuttoncolourimetriccardbasedonmachinevisiontechnology
AT xiaoyanhu makingroastedmuttoncolourimetriccardbasedonmachinevisiontechnology
AT fangzhuyu makingroastedmuttoncolourimetriccardbasedonmachinevisiontechnology
AT dengyongliu makingroastedmuttoncolourimetriccardbasedonmachinevisiontechnology