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基于计算机的掌跖部皮肤黑素细胞性病变皮肤镜图像分类

Computer-based classification of dermoscopy images of melanocytic lesions on acral volar skin.

作者信息

Iyatomi Hitoshi, Oka Hiroshi, Celebi M Emre, Ogawa Koichi, Argenziano Giuseppe, Soyer H Peter, Koga Hiroshi, Saida Toshiaki, Ohara Kuniaki, Tanaka Masaru

机构信息

Department of Electronic Informatics, Hosei University Faculty of Engineering, Koganei, Tokyo, Japan.

出版信息

J Invest Dermatol. 2008 Aug;128(8):2049-54. doi: 10.1038/jid.2008.28. Epub 2008 Mar 6.

Abstract

We describe a fully automated system for the classification of acral volar melanomas. We used a total of 213 acral dermoscopy images (176 nevi and 37 melanomas). Our automatic tumor area extraction algorithm successfully extracted the tumor in 199 cases (169 nevi and 30 melanomas), and we developed a diagnostic classifier using these images. Our linear classifier achieved a sensitivity (SE) of 100%, a specificity (SP) of 95.9%, and an area under the receiver operating characteristic curve (AUC) of 0.993 using a leave-one-out cross-validation strategy (81.1% SE, 92.1% SP; considering 14 unsuccessful extraction cases as false classification). In addition, we developed three pattern detectors for typical dermoscopic structures such as parallel ridge, parallel furrow, and fibrillar patterns. These also achieved good detection accuracy as indicated by their AUC values: 0.985, 0.931, and 0.890, respectively. The features used in the melanoma-nevus classifier and the parallel ridge detector have significant overlap.

摘要

我们描述了一种用于肢端掌侧黑色素瘤分类的全自动系统。我们总共使用了213张肢端皮肤镜图像(176例痣和37例黑色素瘤)。我们的自动肿瘤区域提取算法在199例病例(169例痣和30例黑色素瘤)中成功提取了肿瘤,并且我们使用这些图像开发了一种诊断分类器。我们的线性分类器采用留一法交叉验证策略时,灵敏度(SE)达到100%,特异性(SP)为95.9%,受试者操作特征曲线下面积(AUC)为0.993(将14例提取失败的病例视为错误分类时,SE为81.1%,SP为92.1%)。此外,我们针对典型的皮肤镜结构开发了三种模式检测器,如平行嵴、平行沟和纤维状模式。它们的AUC值也表明其具有良好的检测准确性,分别为0.985、0.931和0.890。黑色素瘤-痣分类器和平行嵴检测器中使用的特征有显著重叠。

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