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A Computer-aided diagnosis system for classifying prominent skin lesions using machine learning

机译:一种计算机辅助诊断系统,用于使用机器学习对突出的皮肤病变进行分类

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摘要

Skin diseases are the 4th leading cause of skin burden worldwide. Computer-aided diagnosis (CAD) systems have been developed to lessen this burden and to help the patients to conduct the early assessment of the skin lesion. Mostly CAD systems available in the literature only provide skin cancer classification. Classification of the skin lesion is a challenging research area due to similar characteristics of skin lesions. A novel CAD system is presented in this research work for the diagnosis of the most common skin lesions (acne, eczema, psoriasis, benign and malignant melanoma). The proposed approach is based on the pre-processing, segmentation, feature extraction and classification phase. Experiments were performed on 1800 images and 83% accuracy is achieved for six-class classification using support vector machine with the quadratic kernel.
机译:皮肤病是全世界皮肤负担的第4个主要原因。已经开发了计算机辅助诊断(CAD)系统以减少这种负担,并帮助患者进行早期评估皮肤病变。主要是在文献中提供的CAD系统仅提供皮肤癌症分类。由于皮肤病变的相似特征,皮肤病变的分类是一个具有挑战性的研究领域。本研究工作中提出了一种新的CAD系统,用于诊断最常见的皮肤病变(痤疮,湿疹,牛皮癣,良性和恶性黑色素瘤)。所提出的方法基于预处理,分割,特征提取和分类阶段。使用带有二次内核的支持向量机实现的六级分类,实现了在1800图像上进行的实验和83 %精度。

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