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A Skin Lesion Segmentation Method for Dermoscopic Images Based on Adaptive Thresholding with Normalization of Color Models

机译:基于色彩模型归一化的自适应阈值的皮肤镜皮肤病变分割方法

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In medical image processing, the skin lesion segmentation problem plays a vital role, because it is necessary to improve quality of extracting skin lesion features to classify the skin lesion. Hence, imaging diagnosis systems can detect skin cancer early. It is necessary to treat the skin cancer, especially, melanoma – one of the most dangerous form of skin cancer. In this paper, we proposed two adaptive methods to estimate the global threshold used for skin lesion segmentation based on normalization of the color models: RGB and XYZ. The skin lesion segmentation based on our proposed methods gives better result than the Otsu segmentation method regarding the grayscale model. This comparison is assessed on popular metrics for image segmentation, such as Dice and Jaccard scores. Experiments are tested on the famous ISIC dataset.
机译:在医学图像处理中,皮肤病变分割问题起着至关重要的作用,因为必须提高提取皮肤病变特征的质量以对皮肤病变进行分类。因此,影像诊断系统可以及早发现皮肤癌。有必要治疗皮肤癌,尤其是黑色素瘤-一种最危险的皮肤癌形式。在本文中,我们提出了两种基于颜色模型归一化的自适应方法来估计用于皮肤病变分割的全局阈值:RGB和XYZ。就灰度模型而言,基于我们提出的方法的皮肤病变分割比Otsu分割方法能提供更好的结果。该比较是根据图像分割的流行指标(例如Dice和Jaccard分数)进行评估的。实验在著名的ISIC数据集上进行了测试。

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