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ABCD rules segmentation on malignant tumor and benign skin lesion images

机译:ABCD规则分段对恶性肿瘤和良性皮肤病变图像

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Skin lesion is defined as a superficial growth or patch of the skin that is visually different than its surrounding area. Skin lesions appear for many reasons such as the symptoms indicative of diseases, birthmarks, allergic reactions, and so on. Images of skin lesions are analyzed by computer to capture certain features to be characteristic of skin diseases. These activities can be defined as automated skin lesion diagnosis (ASLD). ASLD involves five steps including image acquisition, pre-processing to remove occluding artifacts (such as hair), segmentation to extract regions of interest, feature selection and classification. This paper present analysis of automated segmentation called the ABCD rules (Asymmetry, Border irregularity, Color variegation, Diameter) in image segmentation. The experiment was carried on Malignant tumor and Benign skin lesion images. The study shows that the ABCD rules has successfully classify the images with high value of total dermatoscopy score (TDS). Although some of the analysis shows false alarm result, it may give the significant input to search suitable segmentation measure.
机译:皮肤病变被定义为视觉上与周围区域不同的浅表生长或斑块。皮肤病变出现了许多原因,例如疾病,胎儿,过敏反应等症状。通过计算机分析皮肤病变的图像,以捕捉某些特征以成为皮肤病的特征。这些活动可以定义为自动皮肤病变诊断(ASLD)。 ASLD涉及包括图像采集的五个步骤,预处理以消除遮挡伪像(例如发毛),分割以提取感兴趣的区域,特征选择和分类。本文对图像分割中的ABCD规则(不对称,边界不规则性,颜色差异,直径)的自动分割分析。该实验进行了恶性肿瘤和良性皮肤病变图像。该研究表明,ABCD规则已成功将具有高价值的图像分类为总皮肤病分数(TDS)。虽然一些分析显示了误报的结果,但它可能会给搜索合适的分割度量的重要输入。

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