Efficient surface defect detection in industrial screen printing with minimized labeling effort
Research output: Contribution to journal › Article › Research › peer-review
Authors
Organisational units
External Organisational units
- Polymer Competence Center Leoben GmbH
- Burg Design GmbH
Abstract
As part of the evolving Industry 4.0 landscape, machine learning-based visual inspection plays a key role in enhancing production efficiency. Screen printing, a versatile and cost-effective manufacturing technique, is widely applied in industries like electronics, textiles, and automotive. However, the production of complex multilayered designs is error-prone, resulting in a variety of defect appearances and classes. These defects can be characterized as small in relation to large sample areas and weakly pronounced. Sufficient defect visualization and robust defect detection methods are essential to address these challenges, especially considering the permitted design variability. In this work, we present a novel automatic visual inspection system for surface defect detection on decorated foil plates. Customized optical modalities, integrated into a sequential inspection procedure, enable defect visualization of production-related defect classes. The introduced patch-wise defect detection methods, designed to leverage less labeled data, prove effective for industrial defect detection, meeting the given process requirements. In this context, we propose an industry-applicable and scalable data preprocessing workflow that minimizes the overall labeling effort while maintaining high detection performance, as known in supervised settings. Moreover, the presented methods, not relying on any labeled defective training data, outperformed a state-of-the-art unsupervised anomaly detection method in terms of defect detection performance and inference speed.
Details
Original language | English |
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Pages (from-to) | 1-21 |
Number of pages | 21 |
Journal | Integrated computer-aided engineering |
Volume | 32.2025 |
Issue number | 1 |
DOIs | |
Publication status | Published - 18 Oct 2024 |