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Superpixel and Entropy-Based Multi-atlas Fusion Framework for the Segmentation of X-ray Images

机译:基于超像素和熵的多图谱融合框架用于X射线图像分割

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X-ray images segmentation can be useful to aid in accurate diagnosis or faithful 3D bone reconstruction but remains a challenging and complex task, particularly when dealing with large and complex anatomical structures such as the human pelvic bone. In this paper, we propose a multi-atlas fusion framework to automatically segment the human pelvic structure from 45 or 135-degree oblique X-ray radiographic images. Unlike most atlas-based approach, this method combines a data set of a priori segmented X-ray images of the human pelvis (or multi-atlas) to generate an adaptive superpixel map in order to take efficiently into account both the imaging pose variability along with the inter-patient (bone) shape non-linear variability. In addition, we propose a new label propagation or fusion step based on the variation of information criterion for integrating the multi-atlas information into the final consensus segmentation. We thoroughly evaluated the method on 30 manually segmented 45 or 135 degree oblique X-ray radiographic images data set by performing a leave-one-out study. Compared to the manual gold standard segmentations, the accuracy of our automatic segmentation approach is 85% which remains in the error range of manual segmentations due to the inter intra/observer variability.
机译:X射线图像分割可用于帮助进行准确的诊断或忠实的3D骨重建,但仍然是一项艰巨而复杂的任务,尤其是在处理大型复杂的解剖结构(例如人骨盆骨)时。在本文中,我们提出了一种多图集融合框架,可以根据45或135度倾斜X射线射线照相图像自动分割人体骨盆结构。与大多数基于图集的方法不同,此方法结合了人类骨盆(或多图集)的先验分割X射线图像的数据集,以生成自适应超像素图,以便有效地考虑沿与患者间(骨骼)形状非线性变化有关。此外,我们提出了一种基于信息准则变化的新标签传播或融合步骤,用于将多图集信息整合到最终的共识细分中。我们通过进行留一法研究,对30个手动分割的45或135度斜X射线照相图像数据集进行了全面评估,对方法进行了评估。与手动黄金标准分割相比,我们的自动分割方法的准确性为85%,由于内部/观察者之间的差异,该精度仍处于手动分割的误差范围内。

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