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Lumbar Spine Posterior Corner Detection in X-Rays Using Haar-Based Features

机译:腰椎后角检测X射线使用哈尔的特征

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3D reconstruction of the spine using biplanar X-rays remains approximate and sometimes requires human-machine interactions to adjust the position of important features such as vertebral corners and endplates. The purpose of this study is to develop a method to extract automatically the accurate position of lumbar vertebrae posterior corners. In the proposed method we select corner point candidates from an initial edge map. A dedicated pipeline is designed to discard unwanted candidates, involving polyline simplification, curvature thresholding and multiscale Haar filtering. Ultimately, we use a priori knowledge derived from an initial 3D spine model to define search areas and select the final corner points. The framework was tested on 21 biplanar X-rays from scoliotic children. Corner positions are compared with manual selections by two experts. The results report a localization accuracy between 0.6 mm and 1.4 mm, comparable to manual expert variability.
机译:使用Biplanar X射线的3D重建脊柱仍然是近似的,有时需要人机相互作用以调整椎体和端板等重要特征的位置。本研究的目的是开发一种自动提取腰椎后角的方法。在所提出的方法中,我们从初始边缘映射中选择角点候选。专用管道旨在丢弃不需要的候选人,涉及折线简化,曲率阈值和多尺度哈尔过滤。最终,我们使用从初始3D脊柱模型的先验知识来定义搜索区域并选择最终角点。该框架在脊椎儿童的21例双磷脂X射线上进行了测试。将角姿势与两位专家的手动选择进行比较。结果报告了0.6毫米和1.4毫米之间的本地化精度,可与手动专家变异相当。

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