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Using 3D differential forms to characterize a pigmented lesion in vivo.

机译:使用3D差异形式来表征体内色素性病变。

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BACKGROUND/PURPOSE: After the formulation of ABCD rules, many new feature extraction methods are emerging to describe the asymmetry, border irregularity, color variation and diameter of malignant melanoma. In this paper, a new research direction orthogonal to ABCD rules that characterizes 3D local disruption of skin surfaces to realize automatic recognition of melanoma is described. METHODS: This paper examines 3D differential forms of skin surfaces to characterize the local geometrical properties of melanoma. Firstly, 3D data of skin surfaces are obtained using a photometric stereo device. Then differential forms of lesion surfaces are determined to describe the geometrical texture patterns involved. Using only these geometrical features, a simple least-squared error-based linear classifier can be constructed to realize the classification of malignant melanomas and benign lesions. RESULTS: As with the 3D data of 35 melanoma and 66 benign lesion samples collected from local pigmented lesion clinics, the optimal sensitivity and specificity of the constructed linear classifier are 71.4% and 86.4%, respectively. The total area enclosed by the corresponding receiver operating characteristics curve is 0.823. CONCLUSION: This study indicates that differential forms obtained from 3D data are very promising in characterizing melanoma. Combining these features with other skin features such as border irregularity and color variation might further improve the accuracy and reliability of the automatic diagnosis of melanoma.
机译:背景/目的:在制定ABCD规则后,出现了许多新的特征提取方法来描述恶性黑色素瘤的不对称,边界不规则,颜色变化和直径。在本文中,描述了正交于ABCD规则的新研究方向,该规则表征了皮肤表面的3D局部破坏以实现黑素瘤的自动识别。方法:本文研究了皮肤表面的3D差异形式,以表征黑色素瘤的局部几何特性。首先,使用光度立体设备获得皮肤表面的3D数据。然后确定病变表面的差异形式以描述所涉及的几何纹理图案。仅使用这些几何特征,就可以构建一个基于最小二乘误差的简单线性分类器,以实现恶性黑色素瘤和良性病变的分类。结果:与从当地色素性病变诊所收集的35例黑色素瘤和66例良性病变样品的3D数据一样,构建的线性分类器的最佳灵敏度和特异性分别为71.4%和86.4%。相应的接收器工作特性曲线所包围的总面积为0.823。结论:这项研究表明,从3D数据获得的差异形式在表征黑色素瘤方面非常有前途。将这些特征与其他皮肤特征(例如边界不规则和颜色变化)结合起来,可以进一步提高自动诊断黑色素瘤的准确性和可靠性。

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