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Cited 3 time in webofscience Cited 4 time in scopus
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A Deep Learning-Based Surface Defect Inspection System for Smartphone Glass

Authors
Go, Gwang-MyongBu, Seok-JunCho, Sung-Bae
Issue Date
2019
Publisher
Springer Verlag
Keywords
Deep learning; Convolutional neural network; Class activation map; Smartphone glass inspection; Defect detection; Augmentation; Image preprocessing
Citation
Lecture Notes in Computer Science, v.11871, pp 375 - 385
Pages
11
Indexed
SCOPUS
Journal Title
Lecture Notes in Computer Science
Volume
11871
Start Page
375
End Page
385
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/73672
DOI
10.1007/978-3-030-33607-3_41
ISSN
0302-9743
1611-3349
Abstract
In recent years, convolutional neural network has become a solution to many image processing problems due to high performance. It is particularly useful for applications in automated optical inspection systems related to industrial applications. This paper proposes a system that combines the defect information, which is meta data, with the defect image by modeling. Our model for classification consists of a separate model for embedding location information in order to utilize the defective locations classified as defective candidates and ensemble with the model for classification to enhance the overall system performance. The proposed system incorporates class activation map for preprocessing and augmentation for image acquisition and classification through optical system, and feedback of classification performance by constructing a system for defect detection. Experiment with real-world dataset shows that the proposed system achieved 97.4% accuracy and through various other experiments, we verified that our system is applicable.
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IT공과대학 (컴퓨터공학부)
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