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Automatic detection of basal cell carcinoma using telangiectasia analysis in dermoscopy skin lesion images

机译:在皮肤镜检查皮肤病变图像中使用毛细血管扩张分析自动检测基底细胞癌

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摘要

Background: Telangiectasia, dilated blood vessels near the surface of the skin of small, varying diameter, are critical dermoscopy structures used in the detection of basal cell carcinoma (BCC). Distinguishing th278ese vessels from other telangiectasia, that are commonly found in sun-damaged skin, is challenging. Methods: Image analysis techniques are investigated to find vessels structures in BCC automatically. The primary screen for vessels uses an optimized local color drop technique. A noise filter is developed to eliminate false-positive structures, primarily bubbles, hair, and blotch and ulcer edges. From the telangiectasia mask containing candidate vessel-like structures, shape, size and normalized count features are computed to facilitate the discrimination of benign skin lesions from BCCs with telangiectasia. Results: Experimental results yielded a diagnostic accuracy as high as 96.7% using a neural network classifier for a data set of 59 BCCs and 152 benign lesions for skin lesion discrimination based on features computed from the telangiectasia masks. Conclusion: In current clinical practice, it is possible to find smaller BCCs by dermoscopy than by clinical inspection. Although almost all of these small BCCs have telangiectasia, they can be short and thin. Normalization of lengths and areas helps to detect these smaller BCCs.
机译:背景:毛细血管扩张是皮肤小而直径不一的扩张的血管,是用于检测基底细胞癌(BCC)的重要皮肤镜检查结构。将278种血管与其他常见于受阳光伤害的皮肤的毛细血管扩张区分开来具有挑战性。方法:研究图像分析技术以自动找到BCC中的血管结构。容器的主屏幕使用优化的局部颜色下降技术。开发了一种噪音过滤器,以消除假阳性结构,主要是气泡,头发,斑点和溃疡边缘。从包含候选血管样结构的毛细血管扩张面膜中,计算形状,大小和归一化计数特征,以帮助区分良性皮肤病变与毛细血管扩张的BCC。结果:实验结果使用神经网络分类器对59个BCC和152个良性病变的数据集进行了诊断,诊断准确率高达96.7%,这些数据可根据毛细血管扩张面具的特征进行皮肤病变鉴别。结论:在当前的临床实践中,通过皮肤镜检查发现比临床检查更小的BCC是可能的。尽管几乎所有这些小的BCC都具有毛细血管扩张,但它们可能又短又薄。长度和面积的归一化有助于检测这些较小的BCC。

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