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Computer-aided detection of Basal Cell Carcinoma through blood content analysis in dermoscopy images

机译:通过Dermoscopy图像血液含量分析的基础细胞癌的计算机辅助检测

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Basal cell carcinoma (BCC) is the most common type of skin cancer, which is highly damaging to the skin at its advanced stages and causes huge costs on the healthcare system. However, most types of BCC are easily curable if detected at early stage. Due to limited access to dermatologists and expert physicians, non-invasive computer-aided diagnosis is a viable option for skin cancer screening. A clinical biomarker of cancerous tumors is increased vascularization and excess blood flow. In this paper, we present a computer-aided technique to differentiate cancerous skin tumors from benign lesions based on vascular characteristics of the lesions. Dermoscopy image of the lesion is first decomposed using independent component analysis of the RGB channels to derive melanin and hemoglobin maps. A novel set of clinically inspired features and ratiometric measurements are then extracted from each map to characterize the vascular properties and blood content of the lesion. The feature set is then fed into a random forest classifier. Over a dataset of 664 skin lesions, the proposed method achieved an area under ROC curve of 0.832 in a 10-fold cross validation for differentiating basal cell carcinomas from benign lesions.
机译:基础细胞癌(BCC)是最常见的皮肤癌类型,这对皮肤处于先进阶段的皮肤非常损害,并对医疗保健系统导致巨大成本。然而,如果在早期检测到,大多数类型的BCC都是易于固化的。由于对皮肤科医生和专家医师有限,无侵入性的计算机辅助诊断是皮肤癌筛选的可行选择。癌症肿瘤的临床生物标志物增加了血管形成和过量的血流。在本文中,我们提出了一种计算机辅助技术,根据病变的血管特征来利用良性病变来区分癌症皮肤肿瘤。首先使用RGB通道的独立分量分析来分解病变的Dermoscopy图像,以衍生黑色素和血红蛋白地图。然后从每张地图中提取一种新颖的临床启发特征和比例测量,以表征病变的血管性质和血液含量。然后将功能集送入随机林分类器。在664个皮肤病变的数据集上,所提出的方法在10倍的交叉验证中实现了0.832的ROC曲线的区域,用于区分基础细胞癌从良性病变。

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