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Texture descriptors based on adaptive neighborhoods for classification of pigmented skin lesions

机译:基于自适应邻域的纹理描述符用于色素性皮肤病变的分类

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摘要

Different texture descriptors are proposed for the automatic classification of skin lesions from dermoscopic images. They are based on color texture analysis obtained from (1) color mathematical morphology (MM) and Kohonen self-organizing maps (SOMs) or (2) local binary patterns (LBPs), computed with the use of local adaptive neighborhoods of the image. Neither of these two approaches needs a previous segmentation process. In the first proposed descriptor, the adaptive neighborhoods are used as structuring elements to carry out adaptive MM operations which are further combined by using Kohonen SOM; this has been compared with a non-adaptive version. In the second one, the adaptive neighborhoods enable geometrical feature maps to be defined, from which LBP histograms are computed. This has also been compared with a classical LBP approach. A receiver operating characteristics analysis of the experimental results shows that the adaptive neighborhood-based LBP approach yields the best results. It outperforms the nonadaptive versions of the proposed descriptors and the dermatologists' visual predictions. (C) 2015 SPIE and IS&T
机译:提出了用于从皮肤镜图像对皮肤病变进行自动分类的不同纹理描述符。它们基于从(1)颜色数学形态学(MM)和Kohonen自组织图(SOM)或(2)局部二进制图案(LBP)获得的颜色纹理分析,这些图像是使用图像的局部自适应邻域进行计算的。这两种方法都不需要先前的分割过程。在第一个提出的描述符中,自适应邻域被用作结构元素以执行自适应MM操作,并通过使用Kohonen SOM进一步进行组合。这已与非自适应版本进行了比较。在第二个中,自适应邻域允许定义几何特征图,从中可以计算LBP直方图。这也已经与经典的LBP方法进行了比较。接收器工作特性分析实验结果表明,基于邻域的自适应LBP方法产生了最佳结果。它优于拟议描述符和皮肤科医生的视觉预测的非自适应版本。 (C)2015 SPIE和IS&T

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