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- Original Article Clinical Research: Patient OutcomesOpen Archive
Classification of the Clinical Images for Benign and Malignant Cutaneous Tumors Using a Deep Learning Algorithm
Journal of Investigative DermatologyVol. 138Issue 7p1529–1538Published online: February 8, 2018- Seung Seog Han
- Myoung Shin Kim
- Woohyung Lim
- Gyeong Hun Park
- Ilwoo Park
- Sung Eun Chang
Cited in Scopus: 324We tested the use of a deep learning algorithm to classify the clinical images of 12 skin diseases—basal cell carcinoma, squamous cell carcinoma, intraepithelial carcinoma, actinic keratosis, seborrheic keratosis, malignant melanoma, melanocytic nevus, lentigo, pyogenic granuloma, hemangioma, dermatofibroma, and wart. The convolutional neural network (Microsoft ResNet-152 model; Microsoft Research Asia, Beijing, China) was fine-tuned with images from the training portion of the Asan dataset, MED-NODE dataset, and atlas site images (19,398 images in total).