Detection and identification of foreign bodies in conditioned steak based on ultrasound imaging
Conditioned steak is easily contaminated by foreign bodies, such as iron sheets, glass, and crush bones in the manufacturing processes, posing hidden safety hazards to consumers. In this study, the feasibility of using ultrasonic imaging to detect and identify foreign bodies in conditioned steaks wa...
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Published in | FOOD SCIENCE AND TECHNOLOGY RESEARCH Vol. 30; no. 3; pp. 269 - 280 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
Tsukuba
Japanese Society for Food Science and Technology
01.01.2024
The Japanese Society for Food Science and Technology Japan Science and Technology Agency |
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Abstract | Conditioned steak is easily contaminated by foreign bodies, such as iron sheets, glass, and crush bones in the manufacturing processes, posing hidden safety hazards to consumers. In this study, the feasibility of using ultrasonic imaging to detect and identify foreign bodies in conditioned steaks was investigated. Firstly, the ultrasonic imaging data of foreign bodies was collected. Four discriminant models among them linear discriminant analysis (LDA), and extreme learning machine (ELM) were established, and based on the texture values of the smallest circumscribed rectangular area of the foreign bodies, the type was identified. The foreign bodies were then extracted by gray–level co–occurrence matrix (GLCM). The detection rate of foreign bodies was 97.78 %, meanwhile ELM showed the highest accuracy of recognition rate of 76.67 %. The results showed that ultrasound imaging technology could be used to detect foreign bodies in the conditioned steak and to identify the type of foreign body via pattern recognition. |
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AbstractList | Conditioned steak is easily contaminated by foreign bodies, such as iron sheets, glass, and crush bones in the manufacturing processes, posing hidden safety hazards to consumers. In this study, the feasibility of using ultrasonic imaging to detect and identify foreign bodies in conditioned steaks was investigated. Firstly, the ultrasonic imaging data of foreign bodies was collected. Four discriminant models among them linear discriminant analysis (LDA), and extreme learning machine (ELM) were established, and based on the texture values of the smallest circumscribed rectangular area of the foreign bodies, the type was identified. The foreign bodies were then extracted by gray-level co-occurrence matrix (GLCM). The detection rate of foreign bodies was 97.78%, meanwhile ELM showed the highest accuracy of recognition rate of 76.67%. The results showed that ultrasound imaging technology could be used to detect foreign bodies in the conditioned steak and to identify the type of foreign body via pattern recognition. |
ArticleNumber | FSTR-D-23-00068 |
Author | Li, Chen Zou, Xiaobo Wang, Tianzhen Niu, Zeng Zuo, Min Sun, Zongbao |
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SubjectTerms | Artificial neural networks Bones conditioned steak Crush tests Discriminant analysis ELM Feasibility studies Foreign bodies foreign body Hazard identification Imaging Machine learning Manufacturing industry Pattern recognition Texture recognition Ultrasonic imaging Ultrasonic testing Ultrasound |
Title | Detection and identification of foreign bodies in conditioned steak based on ultrasound imaging |
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