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Estimation of Illumination Map from Dermoscopy Images for Extracting Differential Structures Using Gabor Local Mesh Patterns

机译:从皮肤镜图像估计照明图,以利用Gabor局部网格图案提取差分结构

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Melanoma is the most deadly form of skin cancer and its incidence rate is significantly increasing. The design of an assisted diagnosis system for the detection of melanoma is a challenging task involving various steps related to computer vision. Researchers have concluded that the accurate identification of melanoma requires robust preprocessing steps on dermoscopy images including hair removal, illumination correction etc., that can help in a better detection of melanoma. In this paper, we propose a novel illumination correction algorithm followed by robust feature extraction from dermoscopy images, leading to a better identification of cancer. Illumination correction is based on statistical estimation of illumination content in the images, followed by the extraction of differential structures using a combination of Gabor filtering followed by extracting local mesh patterns, which exhibit physiological significance based on various clinical rules for detecting melanoma. Our experiments show that the proposed technique outperforms all the other methods that have been considered in this paper.
机译:黑色素瘤是皮肤癌中最致命的形式,其发病率显着增加。用于检测黑色素瘤的辅助诊断系统的设计是一项艰巨的任务,涉及与计算机视觉相关的各个步骤。研究人员得出结论,准确识别黑素瘤需要在皮肤镜图像上进行强有力的预处理,包括脱毛,照度校正等,这有助于更好地检测黑素瘤。在本文中,我们提出了一种新颖的照度校正算法,随后从皮肤镜检查图像中提取了可靠的特征,从而更好地识别了癌症。照度校正基于图像中照度含量的统计估计,然后使用Gabor滤波的组合提取差分结构,然后提取局部网格模式,这些模式根据检测黑素瘤的各种临床规则表现出生理学意义。我们的实验表明,所提出的技术优于本文中考虑的所有其他方法。

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