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Color refinement using deep neural networks for enhancing color recognition in a projector-camera system

Authors
Kang, ChangguKim, MeekyoungLee, Sung-Hee
Issue Date
Dec-2019
Publisher
Society for Information Display
Keywords
color refinement; deep neural networks; projector-camera system
Citation
Journal of the Society for Information Display, v.27, no.12, pp 795 - 805
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
Journal of the Society for Information Display
Volume
27
Number
12
Start Page
795
End Page
805
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/8422
DOI
10.1002/jsid.826
ISSN
1071-0922
1938-3657
Abstract
In projector-camera systems, object recognition is essential to enable users to interact with physical objects. Among several input features used by the object classifier, color information is widely used as it is easily obtainable. However, the color of an object seen by the camera changes due to the projected light from the projector, which degrades the recognition performance. To solve this problem, we propose a method to restore the original color of an object from the observed color through camera. The color refinement method has been developed based on the deep neural network. The inputs to the neural network are the color of the projector light as well as the observed color of the object in multiple color spaces, including RGB, HSV, HIS, and HSL. The neural network is trained in a supervised manner. Through a number of experiments, we show that our refinement method reduces the difference from the original color and improves the object recognition rate implemented with a number of classification methods.
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Kang, Chang Gu
IT공과대학 (컴퓨터공학부)
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