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Computer Based Melanocytic and Nevus Image Enhancement and Segmentation

机译:基于计算机的黑素细胞和痣图像增强与分割

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摘要

Digital dermoscopy aids dermatologists in monitoring potentially cancerous skin lesions. Melanoma is the 5th common form of skin cancer that is rare but the most dangerous. Melanoma is curable if it is detected at an early stage. Automated segmentation of cancerous lesion from normal skin is the most critical yet tricky part in computerized lesion detection and classification. The effectiveness and accuracy of lesion classification are critically dependent on the quality of lesion segmentation. In this paper, we have proposed a novel approach that can automatically preprocess the image and then segment the lesion. The system filters unwanted artifacts including hairs, gel, bubbles, and specular reflection. A novel approach is presented using the concept of wavelets for detection and inpainting the hairs present in the cancer images. The contrast of lesion with the skin is enhanced using adaptive sigmoidal function that takes care of the localized intensity distribution within a given lesion’s images. We then present a segmentation approach to precisely segment the lesion from the background. The proposed approach is tested on the European database of dermoscopic images. Results are compared with the competitors to demonstrate the superiority of the suggested approach.
机译:数字Dermoscopy艾滋病监测潜在癌症皮肤病的皮肤病学家。黑色素瘤是第5种常见的皮肤癌形式,这是罕见的,但最危险。黑色素瘤是可固化的,如果在早期检测到。来自正常皮肤的癌症病变的自动分割是计算机病变检测和分类中最关键但最棘手的部分。病变分类的有效性和准确性严重依赖于病变分割的质量。在本文中,我们提出了一种新的方法,可以自动预处理图像,然后分段病变。该系统过滤不需要的伪像,包括毛发,凝胶,气泡和镜面反射。使用小波概念来呈现一种新的方法,用于检测和染色癌症图像中存在的毛发。使用皮肤的损伤对比度使用适应性的矩形函数来增强,该函数在给定的病变的图像中处理局部强度分布。然后,我们提出了一种分割方法来精确地将病变从背景中分段。在Dermoscopic图像的欧洲数据库上测试了所提出的方法。结果与竞争对手进行了比较,以证明建议方法的优势。

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