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A NOVEL NONPARAMETRIC TECHNIQUE FOR SEGMENTING MULTIMODE HYPERSPECTRAL IMAGES OBTAINED FROM NON-MELANOMA SKIN CANCER LESIONS

机译:一种新的非参数化技术,用于分离从非黑素瘤皮肤癌病变中获得的多模高光谱图像

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Keratinocyte Carcinoma, more traditionally known as Non-melanoma skin cancer (NMSC), is the most common cancer in humans. Incidence continues to increase despite increased public awareness of the harmful effects of solar radiation. In this paper, a non-parametric technique based on image registration will be applied to the multimode hyperspectral imaging system to segment Basal Cell Carcinoma (BCC) and Squamous cell carcinoma lesions (SCC). The aim is to enhance Mohs surgery by determining the actual borderlines of the desired area in the patient's images, leading to increased efficiency and efficacy of the Mohs surgery. The proposed algorithm was applied to four sets of different Multimode hyperspectral Images with Non-Melanoma Skin. The experimental findings showed that the proposed algorithm is effective in Non-Melanoma skin detection. This could lead to improved image-guided excision of cancerous lesions with potential applications in robotic interventions.
机译:角质形成细胞癌,更传统地称为非黑素瘤皮肤癌(NMSC),是人类中最常见的癌症。尽管公众越来越意识到太阳辐射的有害影响,但发病率仍在增加。本文将基于图像配准的非参数技术应用于多模高光谱成像系统,以分割基底细胞癌(BCC)和鳞状细胞癌病变(SCC)。目的是通过确定患者图像中所需区域的实际边界线来增强Mohs手术,从而提高Mohs手术的效率和功效。所提出的算法被应用于四组不同的具有非黑素瘤皮肤的多模高光谱图像。实验结果表明,该算法在非黑色素瘤皮肤检测中是有效的。这可能会导致改进的图像引导下的癌灶切除,并可能在机器人干预中得到应用。

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