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Visual inspection system for anomaly detection on KTL coatings using variational autoencoders
ID
Kozamernik, Nejc
(
Author
),
ID
Bračun, Drago
(
Author
)
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https://www.sciencedirect.com/science/article/pii/S2212827120307496
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Abstract
Electric cathode metal coating (KTL) is a popular choice for surface protection of metal components in the automotive industry. Due to the complex 3D shape of the parts and the glossy black color of the coating, machine vision inspection is very sensitive to variabilities among parts and to the variabilities in their positioning during the image acquisition. In this paper a variational autoencoder model for anomaly detection is presented to make further image processing more immune to variability and to detect coating defects more reliably.
Language:
English
Keywords:
surface defect inspection
,
imaging system
,
anomaly detection
,
deep generative models
,
variational autoencoders
Work type:
Article
Typology:
1.08 - Published Scientific Conference Contribution
Organization:
FS - Faculty of Mechanical Engineering
Publication status:
Published
Publication version:
Version of Record
Year:
2020
Number of pages:
Str. 1558-1563
Numbering:
Vol. 93
PID:
20.500.12556/RUL-121554
UDC:
004.92:629.7(045)
ISSN on article:
2212-8271
DOI:
10.1016/j.procir.2020.04.114
COBISS.SI-ID:
32754691
Publication date in RUL:
15.10.2020
Views:
1741
Downloads:
355
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Record is a part of a proceedings
Title:
53rd CIRP Conference on Manufacturing Systems 2020
COBISS.SI-ID:
30177283
Record is a part of a journal
Title:
Procedia CIRP
Publisher:
Elsevier
ISSN:
2212-8271
COBISS.SI-ID:
12981019
Secondary language
Language:
Slovenian
Keywords:
KTL zaščita
,
iskanje površinskih napak
,
slikovni sistem
,
detekcija anomalij
,
globoki generativni model
,
variacijski avtoenkoder
Projects
Funder:
ARRS - Slovenian Research Agency
Project number:
P2-0270
Name:
Proizvodni sistemi, laserske tehnologije in spajanje materialov
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