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Segmentation of light and dark hair in dermoscopic images: a hybrid approach using a universal kernel

机译:皮肤镜图像中浅色和深色头发的分割:使用通用内核的混合方法

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The main challenge in an automated diagnostic system for the early diagnosis of melanoma is the correct segmentation and classification of moles, often occluded by hair in images obtained with a dermoscope. Hair occlusion causes segmentation algorithms to fail to identify the correct nevus border, and can cause errors in estimating texture measures. We present a new method to identify hair in dermoscopic images using a universal approach, which can segment both dark and light hair without prior knowledge of the hair type. First, the hair is amplified using a universal matched filtering kernel, which generates strong responses for both dark and light hair without prejudice. Then we apply local entropy thresholding on the response to get a raw binary hair mask. This hair mask is then refined and verified by a model checker. The model checker includes a combination of image processing (morphological thinning and label propagation) and mathematical (Gaussian curve fitting) techniques. The result is a clean hair mask which can be used to segment and disocclude the hair in the image, preparing it for further segmentation and analysis. Application on real dermoscopic images yields good results for thick hair of varying colours, from light to dark. The algorithm also performs well on skin images with a mixture of both dark and light hair, which was not previously possible with previous hair segmentation algorithms.
机译:用于黑色素瘤早期诊断的自动化诊断系统中的主要挑战是痣的正确分割和分类,这些痣通常在用皮肤镜获得的图像中被头发遮挡。头发咬合会导致分割算法无法识别正确的痣边界,并可能导致估计纹理量度时出错。我们提出了一种使用通用方法在皮肤镜图像中识别头发的新方法,该方法可以在不事先知道头发类型的情况下分割深色头发和浅色头发。首先,使用通用的匹配过滤内核对头发进行放大,该内核可对深色和浅色头发产生强烈的响应而不会产生偏见。然后,在响应上应用局部熵阈值获取原始的二进制发膜。然后,通过模型检查器优化并验证此发膜。模型检查器包括图像处理(形态细化和标签传播)和数学(高斯曲线拟合)技术的组合。结果是获得了干净的发膜,可用于对图像中的头发进行分段和遮挡,为进一步的分段和分析做准备。对于从浅到深的各种颜色的浓密头发,在真实的皮肤镜图像上应用都会产生良好的效果。该算法在混合了深色和浅色头发的皮肤图像上也表现出色,这在以前的头发分割算法中是不可能实现的。

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