Tytuł pozycji:
Textural features based on run length encoding in the classification of furniture surfaces with the orange skin defect
- Tytuł:
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Textural features based on run length encoding in the classification of furniture surfaces with the orange skin defect
- Autorzy:
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Pach, Jakub
Chmielewski, Leszek J.
Orłowski, Arkadiusz
Kruk, Michał
Kurek, Jarosław
Świderski, Bartosz
Antoniuk, Izabella
Wieczorek, Grzegorz
Śmietańska, Katarzyna
Górski, Jarosław
- Data publikacji:
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2019
- Słowa kluczowe:
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quality inspection
furniture surface
orange skin
textural features
run length coding
thresholded image
one nearest neighbour
leave-one-out testing
- Język:
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angielski
- Dostawca treści:
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BazTech
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Textural features based upon thresholding and run length encoding have been successfully applied to the problem of classification of the quality of lacquered surfaces in furniture exhibiting the surface defect known as orange skin. The set of features for one surface patch consists of 12 real numbers. The classifier used was the one nearest neighbour classifier without feature selection. The classification quality was tested on 808 images 300 by 300 pixels, made under controlled, close-to-tangential lighting, with three classes: good, acceptable and bad, in close to balanced numbers. The classification accuracy was not smaller than 98% when the tested surface was not rotated with respect to the training samples, 97% for rotations up to 20 degrees and 95.5% in the worst case for arbitrary rotations.
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).