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Scoring and Data Regression of Quality of Beef Meat Images Using Image Processing

첫 페이지 보기
  • 발행기관
    국제인공지능학회(구 한국인터넷방송통신학회) 바로가기
  • 간행물
    International Journal of Internet, Broadcasting and Communication 바로가기
  • 통권
    Vol.15 No.4 (2023.12)바로가기
  • 페이지
    pp.223-232
  • 저자
    Jae-Man Lee, Seon-Jong Kim
  • 언어
    영어(ENG)
  • URL
    https://www.earticle.net/Article/A440391

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원문정보

초록

영어
This paper constructed a dataset of beef carcass images with a specific resolution, and evaluated its classification performance using artificial intelligence. The dataset was also analyzed based on color and texture features. Grade information by color texture was scored using linear or average values. To analyze the dataset with a higher level of precision, regression analysis was performed based on scores rather than grades. IOCLBP(Improved opponent color local binary pattern) was used for color texture analysis, and the correlation coefficient for each color was high in Blue-gray color space. The scores for each grade in Blue- gray space were first given linearly, and the average and exponential approximation of the actual scores were also evaluated. The evaluation involved scoring using the regression mean and the approximate exponential function from the linear score results. The correlation coefficients according to the scoring method were 0.641, 0.701, and 0.675 respectively. These results showed that scoring by average was most effective. Finally, the grades were divided into non-overlapping score ranges to check the color texture analysis scores of the training dataset. The regression coefficient of the dataset was 0.947, indicating its reliability.

목차

Abstract
1.Introduction
2. Dataset and Deep Learning
2.1 Dataset
2.2 Deep learning results
3. Dataset and Color-texture Analysis
3.1 Rotation-invariant uniform LBP
3.2 IOCLBP
3.3 Regression analysis and grading
4. Test and Results
5. Conclusion
Acknowledgement
References

키워드

Scoring Linear Regression Correlation Image Processing Beef Carcass Image

저자

  • Jae-Man Lee [ Professor, Dept. of Applied IT Engineering, Pusan National University, Korea ]
  • Seon-Jong Kim [ Professor, Dept. of Applied IT Engineering, Pusan National University, Korea ] Corresponding Author

참고문헌

자료제공 : 네이버학술정보

간행물 정보

발행기관

  • 발행기관명
    국제인공지능학회(구 한국인터넷방송통신학회) [The International Association for Artificial Intelligence]
  • 설립연도
    2000
  • 분야
    공학>전자/정보통신공학
  • 소개
    인터넷방송, 인터넷 TV , 방송 통신 네트워크 및 관련 분야에 대한 국내는 물론 국제적인 학술, 기술의 진흥발전에 공헌하고 지식 정보화 사회에 기여하고자 한다.

간행물

  • 간행물명
    International Journal of Internet, Broadcasting and Communication
  • 간기
    계간
  • pISSN
    2288-4920
  • eISSN
    2288-4939
  • 수록기간
    2009~2025
  • 십진분류
    KDC 326 DDC 380

이 권호 내 다른 논문 / International Journal of Internet, Broadcasting and Communication Vol.15 No.4

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