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http://dx.doi.org/10.7471/ikeee.2022.26.4.647

A Prediction System of Skin Pore Labeling Using CNN and Image Processing  

Tae-Hee, Lee (Dept. of Electrical and Electronic Eng. Hanyang University)
Woo-Sung, Hwang (Dept. of EECI Eng. Hanyang University)
Myung-Ryul, Choi (Dept. of Electrical and Electronic Eng. Hanyang University)
Publication Information
Journal of IKEEE / v.26, no.4, 2022 , pp. 647-652 More about this Journal
Abstract
In this paper, we propose a prediction system for skin pore labeling based on a CNN(Convolution Neural Network) model, where a data set is constructed by processing skin images taken by users, and a pore feature image is generated by the proposed image processing algorithm. The skin image data set was labeled for pore characteristics based on the visual classification criteria of skin beauty experts. The proposed image processing algorithm was applied to generate pore feature images from skin images and to train a CNN model that predicts pore feature ratings. The prediction results with pore features by the proposed CNN model is similar to experts visual classification results, where less learning time and higher prediction results were obtained than the results by the comparison model (Resnet-50). In this paper, we describe the proposed image processing algorithm and CNN model, the results of the prediction system and future research plans.
Keywords
Skin; Pore; Image processing; CNN; Prediction;
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