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Scleroderma capillary pattern identification using texture descriptors and ensemble classification

机译:使用纹理描述符和集合分类识别硬皮病毛细管模式

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Various connective tissue diseases lead to morphological alternations of blood capillaries. Consequently, observation of the capillaries at the finger nailfold - nailfold capillaroscopy (NC) - is a standard method for diagnosing diseases such as scleroderma or Raynaud's phenomenon. This is typically performed through manual inspection by an expert to lead to a determination of one of the established NC scleroderma patterns (early, active, and late). In this paper, we present an automated method of analysing nailfold capillaroscopy images and categorising them into NC patterns. For this purpose, we extract a carefully chosen set of texture features from the images and employ an ensemble classification approach to arrive at decisions for each captured finger which are then aggregated to form a diagnosis for the patient. Experimental results on a set of 60 NC images from 16 subjects demonstrate the accuracy and usefulness of our presented approach.
机译:各种结缔组织疾病导致毛细血管形态改变。因此,观察手指指甲处的毛细血管-指甲毛细血管镜(NC)-是诊断疾病的标准方法,例如硬皮病或雷诺现象。通常,这是由专家通过手动检查执行的,以确定已建立的NC硬皮病模式之一(早期,活动和晚期)。在本文中,我们提出了一种分析指甲折叠毛细血管镜图像并将其分类为NC模式的自动方法。为此,我们从图像中提取了一组精心选择的纹理特征,并采用整体分类方法来确定每个捕获手指的决策,然后将这些决策汇总以形成对患者的诊断。在来自16个受试者的60张NC图像上的实验结果证明了我们提出的方法的准确性和实用性。

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