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Automatic non-rigid mismatch correction algorithm for CT-CT longitudinal oncology studies

机译:CT-CT纵向肿瘤学研究自动非刚性失配算法

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Significant coverage mismatches, non-rigid motion, structural variability of anatomy, and intensity variations in contrast studies make automatic correction for multi-time point CT oncology studies a difficult problem. Also, since multiple volumes have to be non-rigidly co-aligned, it is important and challenging to maintain consistency of maps during non-rigid registration [NRR]. We present a fully automatic algorithm to handle above challenges using, 1) A novel graph-matching approach to initialize rigid registration under large coverage mismatches 2) An approximate, 1D diffeomorphic framework using patch based normalized image gradients to handle NRR. The above combination makes our method robust, fast (≈ 6 s for matching a pair of volumes on standard CPUs for high res. CT cases) and can be used to handle multiple volumes seamlessly. Validation of the proposed algorithm is shown on 17 pairwise NRR experiments on challenging multi-time point oncology studies.
机译:显着的覆盖率不匹配,非刚性运动,解剖结构的结构变异,对比度研究的强度变化使多次点CT肿瘤学研究自动校正难题。而且,由于多个体积必须非刚性共对,因此在非刚性登记期间维持地图的一致性是重要的和挑战性。我们提出了一种全自动算法来处理上述挑战,1)一种新的图形匹配方法,以在大覆盖不匹配的情况下初始化刚性登记2)使用贴片的归一化图像梯度来处理NRR的近似1D漫射框架。上面的组合使我们的方法稳健,快速(≈6≈高分辨率标准CPU上的一对卷。CT例),可用于无缝地处理多个卷。提出算法的验证显示在17个成对的NRR实验上,用于具有挑战性的多时间点肿瘤学研究。

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