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Hybrid Segmentation Scheme for Skin Features Extraction Using Dermoscopy Images

Authors
Rew, JehyeokKim, HyungjoonHwang, Eenjun
Issue Date
2021
Publisher
TECH SCIENCE PRESS
Keywords
Image segmentation; skin texture; feature extraction; der-moscopy image
Citation
CMC-COMPUTERS MATERIALS & CONTINUA, v.69, no.1, pp.801 - 817
Indexed
SCIE
SCOPUS
Journal Title
CMC-COMPUTERS MATERIALS & CONTINUA
Volume
69
Number
1
Start Page
801
End Page
817
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/130186
DOI
10.32604/cmc.2021.017892
ISSN
1546-2218
Abstract
Objective and quantitative assessment of skin conditions is essential for cosmeceutical studies and research on skin aging and skin regeneration. Various handcraft-based image processing methods have been proposed to evaluate skin conditions objectively, but they have unavoidable disadvantages when used to analyze skin features accurately. This study proposes a hybrid segmentation scheme consisting of Deeplab v3+ with an Inception-ResNet-v2 backbone, LightGBM, and morphological processing (MP) to overcome the shortcomings of handcraft-based approaches. First, we apply Deeplab v3+ with an Inception-ResNet-v2 backbone for pixel segmentation of skin wrinkles and cells. Then, LightGBM and MP are used to enhance the pixel segmentation quality. Finally, we determine several skin features based on the results of wrinkle and cell segmentation. Our proposed segmentation scheme achieved a mean accuracy of 0.854, mean of intersection over union of 0.749, and mean boundary F1 score of 0.852, which achieved 1.1%, 6.7%, and 14.8% improvement over the panoptic-based semantic segmentation method, respectively.
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공과대학 (전기전자공학부)
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