首页> 外文会议>Image Processing pt.3; Progress in Biomedical Optics and Imaging; vol.7 no.30 >Detection of Blue-White Veil Areas in Dermoscopy Images Using Machine Learning Techniques
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Detection of Blue-White Veil Areas in Dermoscopy Images Using Machine Learning Techniques

机译:使用机器学习技术检测皮肤镜图像中的蓝白色面纱区域

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As a result of the advances in skin imaging technology and the development of suitable image processing techniques, during the last decade, there has been a significant increase of interest in the computer-aided diagnosis of skin cancer. Dermoscopy is a non-invasive skin imaging technique which permits visualization of features of pigmented melanocytic neoplasms that are not discernable by examination with the naked eye. One of the useful features in dermoscopic diagnosis is the blue-white veil (irregular, structureless areas of confluent blue pigmentation with an overlying white "ground-glass" film) which is mostly associated with invasive melanoma. In this preliminary study, a machine learning approach to the detection of blue-white veil areas in dermoscopy images is presented. The method involves pixel classification based on relative and absolute color features using a decision tree classifier. Promising results were obtained on a set of 224 dermoscopy images.
机译:由于皮肤成像技术的进步和合适的图像处理技术的发展,在过去的十年中,人们对计算机辅助诊断皮肤癌的兴趣大大增加。皮肤镜检查是一种非侵入性的皮肤成像技术,可以可视化用肉眼检查无法辨认的色素性黑素细胞瘤的特征。皮肤镜诊断中有用的特征之一是蓝白色的面纱(不规则的,无结构的蓝色色素沉着与上覆的白色“毛玻璃”膜重叠),主要与浸润性黑色素瘤有关。在这项初步研究中,提出了一种用于在皮肤镜检查图像中检测蓝白色面纱区域的机器学习方法。该方法涉及使用决策树分类器基于相对和绝对颜色特征的像素分类。在一组224张皮肤镜检查图像上获得了可喜的结果。

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