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3D intrathoracic region definition and its application to PET-CT analysis

机译:3D胸腔内区域定义及其在PET-CT分析中的应用

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Recently developed integrated PET-CT scanners give co-registered multimodal data sets that offer complementary three-dimensional (3D) digital images of the chest. PET (positron emission tomography) imaging gives highly specific functional information of suspect cancer sites, while CT (X-ray computed tomography) gives associated anatomical detail. Because the 3D CT and PET scans generally span the body from the eyes to the knees, accurate definition of the intrathoracic region is vital for focusing attention to the central-chest region. In this way, diagnostically important regions of interest (ROIs), such as central-chest lymph nodes and cancer nodules, can be more efficiently isolated. We propose a method for automatic segmentation of the intrathoracic region from a given co-registered 3D PET-CT study. Using the 3D CT scan as input, the method begins by finding an initial intrathoracic region boundary for a given 2D CT section. Next, active contour analysis, driven by a cost function depending on local image gradient, gradient-direction, and contour shape features, iteratively estimates the contours spanning the intrathoracic region on neighboring 2D CT sections. This process continues until the complete region is defined. We next present an interactive system that employs the segmentation method for focused 3D PET-CT chest image analysis. A validation study over a series of PET-CT studies reveals that the segmentation method gives a Dice index accuracy of >98%. In addition, further results demonstrate the utility of the method for focused 3D PET-CT chest image analysis, ROI definition, and visualization.
机译:最近开发的集成式PET-CT扫描仪可提供共同注册的多峰数据集,这些数据集可提供胸部的互补三维(3D)数字图像。 PET(正电子发射断层扫描)成像可提供可疑癌症部位的高度特定的功能信息,而CT(X射线计算机断层扫描)可提供相关的解剖学细节。由于3D CT和PET扫描通常从眼睛到膝盖跨越整个身体,因此,准确定义胸腔内区域对于将注意力集中在中胸区域至关重要。这样,可以更有效地分离出诊断上重要的重要目标区域(ROI),例如中央胸部淋巴结和癌结节。我们提出了一种从给定的共同注册的3D PET-CT研究中自动分割胸腔内区域的方法。使用3D CT扫描作为输入,该方法从找到给定2D CT断面的初始胸腔内区域边界开始。接下来,由取决于局部图像梯度,梯度方向和轮廓形状特征的成本函数驱动的主动轮廓分析,迭代地估计跨越相邻2D CT截面上胸腔内区域的轮廓。该过程一直持续到定义了完整区域为止。接下来,我们介绍一个交互式系统,该系统采用分割方法进行聚焦3D PET-CT胸部图像分析。对一系列PET-CT研究的一项验证研究表明,该分割方法得出的Dice索引准确度> 98%。此外,进一步的结果证明了该方法可用于聚焦3D PET-CT胸部图像分析,ROI定义和可视化。

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