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基于深度学习的计算机辅助皮肤肿瘤分类器的可能性。

The Possibility of Deep Learning-Based, Computer-Aided Skin Tumor Classifiers.

作者信息

Fujisawa Yasuhiro, Inoue Sae, Nakamura Yoshiyuki

机构信息

Department of Dermatology, University of Tsukuba, Tsukuba, Japan.

出版信息

Front Med (Lausanne). 2019 Aug 27;6:191. doi: 10.3389/fmed.2019.00191. eCollection 2019.

Abstract

The incidence of skin tumors has steadily increased. Although most are benign and do not affect survival, some of the more malignant skin tumors present a lethal threat if a delay in diagnosis permits them to become advanced. Ideally, an inspection by an expert dermatologist would accurately detect malignant skin tumors in the early stage; however, it is not practical for every single patient to receive intensive screening by dermatologists. To overcome this issue, many studies are ongoing to develop dermatologist-level, computer-aided diagnostics. Whereas, many systems that can classify dermoscopic images at this dermatologist-equivalent level have been reported, a much fewer number of systems that can classify conventional clinical images have been reported thus far. Recently, the introduction of deep-learning technology, a method that automatically extracts a set of representative features for further classification has dramatically improved classification efficacy. This new technology has the potential to improve the computer classification accuracy of conventional clinical images to the level of skilled dermatologists. In this review, this new technology and present development of computer-aided skin tumor classifiers will be summarized.

摘要

皮肤肿瘤的发病率一直在稳步上升。虽然大多数是良性的,不影响生存,但一些恶性程度较高的皮肤肿瘤如果诊断延迟,发展到晚期会构成致命威胁。理想情况下,由专业皮肤科医生进行检查能够在早期准确检测出恶性皮肤肿瘤;然而,让每一位患者都接受皮肤科医生的密集筛查并不现实。为了克服这个问题,许多研究正在进行,以开发具备皮肤科医生水平的计算机辅助诊断技术。尽管已经报道了许多能够在与皮肤科医生相当的水平上对皮肤镜图像进行分类的系统,但迄今为止,能够对传统临床图像进行分类的系统却少得多。最近,深度学习技术的引入,一种能自动提取一组代表性特征以进行进一步分类的方法,极大地提高了分类效率。这项新技术有潜力将传统临床图像的计算机分类准确率提高到熟练皮肤科医生的水平。在这篇综述中,将总结这项新技术以及计算机辅助皮肤肿瘤分类器的当前发展情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/025f/6719629/df5803ce8f24/fmed-06-00191-g0001.jpg

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