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An Image Registration Method with Radial Feature Points Sampling: Application to Follow-Up CT Scans of a Solitary Pulmonary Nodule

机译:带有径向特征点采样的图像配准方法:在孤立性肺结节的后续CT扫描中的应用

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In order to support radiologists' follow-up task of two CT scans captured in the past and in the present, we aimed to develop a system that displays both a region of interest (ROI) in one image selected by a radiologist and a corresponding ROI in another image. In this paper, we propose a registration method for the system. A typical registration method identifies several pairs of matched feature points (i.e., matching pairs) between two images within the range of a predefined distance from the ROI's center point (i.e., interest point) to correct a positional shift of an organ caused by heartbeats and breathing. However, low accuracy of registration is often observed because of biased distribution or a small number of matching pairs, depending on the sampling range. We developed a novel registration method that radially and evenly searches for several nearest matching pairs around the interest point and then estimates a translation vector at the interest point as a weighted average of these nearest pairs using a weighting factor based on its distance from the interest point. This method was based on the assumption that the transformation of an interest point work with the transformation of a near point since the lung is a continuum. The results of a comparative evaluation of the existing method and the proposed method on the basis of 15 cases showed that the accuracy of the proposed method was higher than that of the existing method in 13/15 cases. We analyzed the association between the accuracy and the range of sampling and found that the accuracy of the proposed method was similar to the best performance of the existing method with an ideal range of sampling the matching pairs. Finally, we showed evidence that the new method was reasonably consistent in terms of giving the best performance.
机译:为了支持放射科医生过去和现在捕获的两次CT扫描的后续任务,我们旨在开发一种在放射科医生选择的一张图像中同时显示感兴趣区域(ROI)和相应ROI的系统在另一个图像中。在本文中,我们提出了该系统的注册方法。一种典型的配准方法是在距ROI中心点(即兴趣点)预定距离的范围内,在两幅图像之间识别几对匹配的特征点(即,匹配对),以校正由心跳和跳动引起的器官位置偏移。呼吸。但是,根据采样范围的不同,由于有偏的分布或少量的匹配对,经常会发现配准的准确性较低。我们开发了一种新颖的配准方法,该方法可以沿径向均匀地搜索兴趣点附近的几个最匹配的对,然后根据其与兴趣点之间的距离,使用权重因子将兴趣点处的转换向量估计为这些最接近对的加权平均值。该方法基于这样的假设:由于肺是连续体,因此兴趣点的转换与近点的转换一起工作。在15个案例的基础上对现有方法和所提出的方法进行比较评估的结果表明,在13/15案例中,所提出的方法的准确性高于现有方法。我们分析了精度与采样范围之间的关联,发现该方法的精度与现有方法的最佳性能相似,并且具有对匹配对的理想采样范围。最后,我们证明了新方法在提供最佳性能方面是合理一致的。

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