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Deformable Registration of Coronary Arteries with Topological Constraints for Image-Guided Vascular Interventions

机译:带有图像约束的血管介入拓扑约束的冠状动脉的可变形配准

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2D/3D registration of preoperative computed tomography angiography with intra-operative X-ray angiography improves image guidance in percutaneous coronary intervention. However, previous registration methods are inaccurate and time-consuming due to simple deformation and iterative optimization, respectively. In this paper, we propose a novel method for non-rigid registration of coronary arteries based on a point set registration network, which predicts the complex deformation field directly without iterative optimization. In order to maintain the structure of coronary arteries, we advance the classical point set registration network with a loss function containing global and local topological constraints. The method was evaluated on ten clinical data, and it achieved a median chamfer distance of 73.60 pixels with a run time of less than 1s on CPU. Experimental results demonstrate that the proposed method is highly accurate and efficient.
机译:术前计算机断层血管造影术与术中X射线血管造影术的2D / 3D配准可改善经皮冠状动脉介入治疗中的图像引导。但是,先前的配准方法分别由于简单的变形和迭代优化而分别是不准确和费时的。本文提出了一种基于点集配准网络的冠状动脉非刚性配准的新方法,该方法无需迭代优化即可直接预测复杂的变形场。为了维持冠状动脉的结构,我们用具有包含全局和局部拓扑约束的损失函数来推进经典点集注册网络。该方法基于十项临床数据进行了评估,在CPU上运行时间少于1s,实现了平均倒角距离为73.60像素。实验结果表明,该方法具有较高的准确性和效率。

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