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Nonrigid Image Registration in Digital Subtraction Angiography Using Multilevel B-Spline

机译:使用多级B样条的数字减影血管造影中的非刚性图像配准

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摘要

We address the problem of motion artifact reduction in digital subtraction angiography (DSA) using image registration techniques. Most of registration algorithms proposed for application in DSA, have been designed for peripheral and cerebral angiography images in which we mainly deal with global rigid motions. These algorithms did not yield good results when applied to coronary angiography images because of complex nonrigid motions that exist in this type of angiography images. Multiresolution and iterative algorithms are proposed to cope with this problem, but these algorithms are associated with high computational cost which makes them not acceptable for real-time clinical applications. In this paper we propose a nonrigid image registration algorithm for coronary angiography images that is significantly faster than multiresolution and iterative blocking methods and outperforms competing algorithms evaluated on the same data sets. This algorithm is based on a sparse set of matched feature point pairs and the elastic registration is performed by means of multilevel B-spline image warping. Experimental results with several clinical data sets demonstrate the effectiveness of our approach.
机译:我们使用图像配准技术解决数字减影血管造影(DSA)中运动伪影减少的问题。提议用于DSA的大多数配准算法都是针对周围和大脑血管造影图像设计的,其中我们主要处理整体刚性运动。由于存在于此类血管造影图像中的复杂的非刚性运动,这些算法在应用于冠状动脉造影图像时无法产生良好的结果。提出了多分辨率和迭代算法来解决该问题,但是这些算法与高计算量相关联,这使得它们对于实时临床应用是不可接受的。在本文中,我们提出了一种用于冠状动脉血管造影图像的非刚性图像配准算法,该算法明显快于多分辨率和迭代阻塞方法,并且优于在相同数据集上评估的竞争算法。该算法基于匹配特征点对的稀疏集合,并且通过多级B样条图像扭曲进行弹性配准。带有多个临床数据集的实验结果证明了我们方法的有效性。

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