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Three-dimensional conditional random field for the dermal–epidermal junction segmentation

机译:真皮-表皮连接分割的三维条件随机场

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摘要

The segmentation of the dermal–epidermal junction (DEJ) in confocal images represents a challenging task due to uncertainty in visual labeling and complex dependencies between skin layers. We propose a method to segment the DEJ surface, which combines random forest classification with spatial regularization based on a three-dimensional conditional random field (CRF) to improve the classification robustness. The CRF regularization introduces spatial constraints consistent with skin anatomy and its biological behavior. We propose to specify the interaction potentials between pixels according to their depth and their relative position to each other to model skin biological properties. The proposed approach adds regularity to the classification by prohibiting inconsistent transitions between skin layers. As a result, it improves the sensitivity and specificity of the classification results.
机译:由于视觉标记的不确定性和皮肤层之间的复杂依赖性,共焦图像中的真皮-表皮交界处(DEJ)的分割代表了一项艰巨的任务。我们提出了一种对DEJ曲面进行分割的方法,该方法将基于三维条件随机场(CRF)的随机森林分类与空间正则化相结合,以提高分类的鲁棒性。 CRF规范化引入了与皮肤解剖结构及其生物学行为一致的空间约束。我们建议根据像素的深度和彼此之间的相对位置来指定像素之间的交互电位,以对皮肤生物学特性进行建模。所提出的方法通过禁止皮肤层之间的不一致过渡为分类增加了规律性。结果,它提高了分类结果的敏感性和特异性。

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