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Schmid Filter and Inpainting in Computer-Aided Erosions and Osteophytes Detection Based on Hand Radiographs

机译:基于手射线照相的计算机辅助侵蚀和骨赘检测施密过滤和染色

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In previous papers we presented a computer system to detect erosions and osteophytes from hand radiographs (the most common symptoms of rheumatic diseases) based on the shape analysis of the joint surfaces borders. Such borders are obtained automatically using algorithms which were also proposed in our previous articles. In this paper, we consider a new approach which analyzes patches located at the joint surfaces borders in order to determine which of them correspond to the lesions. Vectors of features which are used to classify patches are calculated by applying Schmid filter with various frequencies and scales. Additional features are obtained using inpainting. Vectors are analyzed based on Gaussian mixture model calculated with expectation maximization algorithm. The accuracy is measured with area under curve of the receiver-operating characteristic. The conducted experiments proved that, the shape approach described in our previous work can be improved by applying Schmid filter and the inpainting approach in the parsing stage, especially, in case of the lower MCP and upper PIP surfaces for which classification still remains inaccurate.
机译:在先前的论文中,我们介绍了一种计算机系统,以根据接合表面边界的形状分析检测手中射线照片的侵蚀和骨赘(风湿病最常见的症状)。这种边界是自动获得的,使用我们之前的文章中也提出的算法获得。在本文中,我们考虑一种新的方法,其分析位于接合表面边界处的贴片,以确定它们中的哪一个对应于病变。通过应用各种频率和尺度来计算用于分类补丁的特征的载体。使用尿素获得附加功能。基于具有预期最大化算法计算的高斯混合模型分析了载体。在接收器操作特性的曲线下测量精度。所进行的实验证明,通过在解析阶段应用施密滤波器和预测方法可以提高我们之前的工作中描述的形状方法,特别是在下载阶段和上皮表面的情况下仍然保持不准确。

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