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Local Orientation Patterns for 3D Surface Texture Analysis of Normal Maps: Application to Facial Skin Condition Classification

机译:法线贴图的3D表面纹理分析的局部方向图:在面部皮肤状况分类中的应用

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In this paper we investigate methods for analysing 3D surface texture for automated facial skin health assessment. We propose a Texture Spectrum inspired method for analysing surface texture from normal maps. A number of approaches for extracting invariant region descriptors from 3D volumetric data have been proposed, yet 3D surface texture analysis has been somewhat neglected. The method we introduce characterizes a normal map with a descriptor based on an extension of Texture Spectrum. We propose two methods for assessing the variation of orientation between two normals. The first applies a threshold on their dot product, while the second variant compares their polar and elevation angles directly. We tested both variants by classifying some facial skin conditions from high resolution normal maps. The results show a clear improvement using the second proposed pattern function over the first on classifying high frequency skin conditions such as visible pores and wrinkles.
机译:在本文中,我们研究了用于分析3D表面纹理以进行自动面部皮肤健康评估的方法。我们提出了一种受“纹理光谱”启发的方法,用于从法线贴图分析表面纹理。已经提出了许多用于从3D体积数据中提取不变区域描述符的方法,但是3D表面纹理分析在某种程度上被忽略了。我们介绍的方法使用基于纹理频谱扩展的描述符对法线贴图进行特征化。我们提出了两种方法来评估两个法线之间的方向变化。第一种在其点积上应用阈值,而第二种则直接比较其极角和仰角。我们通过从高分辨率法线贴图分类一些面部皮肤状况来测试了这两种变体。结果表明,在对高频皮肤状况(例如可见毛孔和皱纹)进行分类时,使用第二种建议的模式函数比第一种提议的函数明显改善。

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