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Deep U-NET Based Heating Film Defect Inspection System
- Hwang, J. W.;
- Park, H. J.;
- Yi, H.
WEB OF SCIENCE
1SCOPUS
2초록
This study introduces a real-time, high-resolution image inspection system that utilizes multiple cameras and deep learning algorithms for the real-time detection of pinholes and scratches on large-area heating films. To accommodate the repetitive inspection processes inherent in products with consistent patterns, the system operates at the region level rather than the frame level. By modifying the U-Net architecture, the system achieved precise segmentation of the inspection area, enabling real-time detection of microscale pinholes and scratches. Additionally, a sticker marker was developed to label the defective regions detected on the film. The proposed system was experimentally validated in an actual production environment, where it demonstrated an impressive 96.6% accuracy in area inspection and a 97.5% defect detection rate at a transportation speed of 12 m/min. These results serve as clear evidence of the effectiveness and practicality of the automatic detection capability facilitated by deep learning in production processes.
키워드
- 제목
- Deep U-NET Based Heating Film Defect Inspection System
- 저자
- Hwang, J. W.; Park, H. J.; Yi, H.
- 발행일
- 2024-04
- 유형
- Article
- 권
- 25
- 호
- 4
- 페이지
- 759 ~ 771
- 언어
- ENG
- 출판사
- KOREAN SOC PRECISION ENG
- 발행국가
- 대한민국
- 분량
- 13 페이지
- ISSN
- E 2005-4602
P 2234-7593