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Automated axial right ventricle to left ventricle diameter ratio computation in computed tomography pulmonary angiography

机译:计算机断层扫描肺血管造影中的自动轴向右心室与左心室直径比计算

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摘要

Automated medical image analysis requires methods toudlocalize anatomic structures in the presence of normal interpatient variability, pathology, and the different protocols used to acquire images for different clinical settings. Recent advances have improved object detection in the context of natural images, but they have not been adapted to the 3D context of medical images. In this paper we present a 2.5D object detector designed to locate, without any user interaction, the left and right heart ventricles in Computed Tomography Pulmonary Angiography (CTPA) images. A 2D object detector is trained to find ventricles on axial slices. Those detections are automatically clustered according toudtheir size and position. The cluster with highest score,udrepresenting the 3D location of the ventricle, is then selected. The proposed method is validated in 403 CTPA studies obtained in patients with clinically suspected pulmonary embolism. Both ventricles are properly detected in 94.7% of the cases. The proposed method is very generic and can be easily adapted to detect other structures in medical images.
机译:自动化的医学图像分析需要在正常的患者间变异性,病理学以及用于为不同临床设置获取图像的不同协议的情况下解剖局部解剖结构的方法。最近的进步已经改善了在自然图像的背景下的物体检测,但是它们还没有适应医学图像的3D环境。在本文中,我们提出了一个2.5D对象检测器,该检测器旨在在没有任何用户交互的情况下定位计算机断层扫描肺血管造影(CTPA)图像中的左,右心室。训练2D对象检测器以找到轴向切片上的心室。这些检测将根据其大小和位置自动聚类。然后选择得分最高的聚类(表示心室的3D位置)。该方法在403例CTPA研究中得到了验证,该研究在临床上怀疑有肺栓塞的患者中进行。在94.7%的病例中正确检测到两个心室。所提出的方法非常通用,可以轻松地用于检测医学图像中的其他结构。

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