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A Novel Automatic Segmentation Workflow of Axial Breast DCE-MRI

机译:轴向乳腺DCE-MRI的自动分割新流程

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In this paper we propose a novel process of a fully automatic breast tissue segmentation which is independent from expert calibration and contrast. The proposed algorithm is composed by two major steps. The first step consists in the detection of breast boundaries. It is based on image content analysis and Moore-Neighbour tracing algorithm. As a processing step, Otsu thresholding and neighbors algorithm are applied. Then, the external area of breast is removed to get an approximated breast region. The second preprocessing step is the delineation of the chest wall which is considered as the lowest cost path linking three key points; These points are located automatically at the breast. They are respectively, the left and right boundary points and the middle upper point placed at the sternum region using statistical method. For the minimum cost path search problem, we resolve it through Dijkstra algorithm. Evaluation results reveal the robustness of our process face to different breast densities, complex forms and challenging cases. In fact, the mean overlap between manual segmentation and automatic segmentation through our method is 96.5%. A comparative study shows that our proposed process is competitive and faster than existing methods. The segmentation of 120 slices with our method is achieved at least in 20.57±5.2s.
机译:在本文中,我们提出了一种新颖的全自动乳腺组织分割方法,该方法独立于专家校准和对比。所提出的算法由两个主要步骤组成。第一步包括检测乳房边界。它基于图像内容分析和摩尔邻域跟踪算法。作为处理步骤,应用了Otsu阈值和邻居算法。然后,去除乳房的外部区域以获得近似的乳房区域。第二个预处理步骤是划定胸壁的轮廓,这被认为是连接三个关键点的成本最低的路径。这些点自动位于乳房处。使用统计方法分别将它们分别定位在胸骨区域的左边界点和右边界点以及中间上点。对于最小成本路径搜索问题,我们通过Dijkstra算法解决。评估结果表明,我们的流程面对不同的乳房密度,复杂形式和挑战性案例的鲁棒性。实际上,通过我们的方法,手动分割和自动分割之间的平均重叠率为96.5%。一项比较研究表明,我们提出的过程比现有方法更具竞争性且速度更快。用我们的方法对120个切片的分割至少在20.57±5.2s内完成。

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