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Automatic segmentation of the spine by means of a probabilistic atlas with a special focus on ribs suppression. Preliminary results

机译:通过概率图谱对脊柱进行自动分割,尤其侧重于肋骨抑制。初步结果

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Spine is a structure commonly involved in several prevalent diseases. In clinical diagnosis, therapy, and surgical intervention, the identification and segmentation of the vertebral bodies are crucial steps. However, automatic and detailed segmentation of vertebrae is a challenging task, especially due to the proximity of the vertebrae to the corresponding ribs and other structures such as blood vessels. In this study, to overcome these problems, a probabilistic atlas of the spine, including cervical, thoracic and lumbar vertebrae has been built to introduce anatomical knowledge in the segmentation process, aiming to deal with overlapping gray levels and the proximity to other structures. From a set of 3D images manually segmented by a physician (training data), a 3D volume indicating the probability of each voxel of belonging to the spine has been developed, being necessary the generation of a probability map and its deformation to adapt to each patient. To validate the improvement of the segmentation using the atlas developed in the testing data, we computed the Hausdorff distance between the manually-segmented ground truth and an automatic segmentation and also between the ground truth and the automatic segmentation refined with the atlas. The results are promising, obtaining a higher improvement especially in the thoracic region, where the ribs can be found and appropriately eliminated.
机译:脊柱是通常与几种流行疾病有关的结构。在临床诊断,治疗和手术干预中,椎体的识别和分割是至关重要的步骤。然而,特别是由于椎骨与相应的肋骨和诸如血管之类的其他结构的接近,对椎骨的自动和详细的分割是一项艰巨的任务。在这项研究中,为克服这些问题,已建立了包括颈椎,胸椎和腰椎在内的脊柱概率图集,以在分割过程中引入解剖学知识,旨在处理重叠的灰度级以及与其他结构的接近性。根据医生手动分割的一组3D图像(训练数据),已开发出指示每个体素属于脊柱的概率的3D体积,这是生成概率图及其变形以适应每个患者的必要条件。为了验证使用测试数据中开发的地图集对分割的改进,我们计算了手动分割的地面实况和自动分割之间的Hausdorff距离,以及地面实况和使用地图集精炼的自动分割之间的Hausdorff距离。结果是有希望的,尤其是在可以发现并适当消除肋骨的胸部区域获得了更高的改善。

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