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Deep Learning-based Data Augmentation for Display Defect Detection
- Lee, Changheon;
- Kang, Suk Ju
Citations
SCOPUS
0초록
This paper presents a deep learning-based data augmentation method for generating defect data. The generated data are to be used for training an anomaly detector for the purpose of detecting display defects. By comparing the generated data with those generated from previous methods we find that the deep learning-based data augmentation outperforms previous methods by producing photorealistic data coverLQJ a diverse range of real-world defects. © 2022 ITE and SID.
키워드
Anomaly detection; Conditional Diffusion models; Generative models
- 제목
- Deep Learning-based Data Augmentation for Display Defect Detection
- 저자
- Lee, Changheon; Kang, Suk Ju
- 발행일
- 2022-10
- 유형
- Conference Paper
- 저널명
- Proceedings of the International Display Workshops
- 권
- 29
- 페이지
- 275 ~ 276