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Registration of Prone and Supine CT Colonography Scans Based on Correlation Optimized Warping and Canonical Correlation Analysis

机译:基于相关优化的翘曲和典范相关分析的俯卧和仰卧CT结肠造影扫描配准

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摘要

In this paper, we propose an automated method for colon registration from supine and prone scans. Four anatomical salient points on the colon are distinguished first. Then correlation optimized warping (COW) method is applied to the segments defined by the anatomical landmarks to find better global registration based on local correlation of segments. To utilize more features along the colon centerline, we extended the COW method by embedding canonical correlation analysis into it for correlation calculation of colon segments. To verify the effectiveness of the proposed method, we tested the algorithm on a CTC dataset of 19 patients with 23 polyps. Experimental results show that by using our method, the estimation error of polyp location could be reduced 68.5% (from 41.6mm to 13.1mm on average) compared to a traditional dynamic warping algorithm.
机译:在本文中,我们提出了一种从仰卧位和俯卧位扫描中自动注册结肠的方法。首先区分结肠上的四个解剖显着点。然后将相关优化翘曲(COW)方法应用于由解剖学界标定义的片段,以基于片段的局部相关性找到更好的全局配准。为了沿结肠中心线利用更多特征,我们通过将规范相关分析嵌入到COW方法中来扩展COW方法,以进行结肠段的相关计算。为了验证所提出方法的有效性,我们在CTC数据集上对19名23例息肉患者进行了测试。实验结果表明,与传统的动态翘曲算法相比,该方法可以将息肉位置的估计误差降低68.5%(平均从41.6mm降低到13.1mm)。

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