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一种用于将左心房电解剖图与三维CT解剖图像进行自动配准和融合的随机方法。

A stochastic approach for automatic registration and fusion of left atrial electroanatomic maps with 3D CT anatomical images.

作者信息

Cristoforetti Alessandro, Masè Michela, Faes Luca, Centonze Maurizio, Del Greco Maurizio, Antolini Renzo, Nollo Giandomenico, Ravelli Flavia

机构信息

Department of Physics, University of Trento, 38050 Povo-Trento, Italy.

出版信息

Phys Med Biol. 2007 Oct 21;52(20):6323-37. doi: 10.1088/0031-9155/52/20/015. Epub 2007 Oct 2.

Abstract

The integration of electroanatomic maps with highly resolved computed tomography cardiac images plays an important role in the successful planning of the ablation procedure of arrhythmias. In this paper, we present and validate a fully-automated strategy for the registration and fusion of sparse, atrial endocardial electroanatomic maps (CARTO maps) with detailed left atrial (LA) anatomical reconstructions segmented from a pre-procedural MDCT scan. Registration is accomplished by a parameterized geometric transformation of the CARTO points and by a stochastic search of the best parameter set which minimizes the misalignment between transformed CARTO points and the LA surface. The subsequent fusion of electrophysiological information on the registered CT atrium is obtained through radial basis function interpolation. The algorithm is validated by simulation and by real data from 14 patients referred to CT imaging prior to the ablation procedure. Results are presented, which show the validity of the algorithmic scheme as well as the accuracy and reproducibility of the integration process. The obtained results encourage the application of the integration method in post-intervention ablation assessment and basic AF research and suggest the development for real-time applications in catheter guiding during ablation intervention.

摘要

将电解剖图与高分辨率计算机断层扫描心脏图像相结合,在心律失常消融手术的成功规划中起着重要作用。在本文中,我们提出并验证了一种全自动策略,用于将稀疏的心房内膜电解剖图(CARTO图)与从术前MDCT扫描中分割出的详细左心房(LA)解剖重建进行配准和融合。通过对CARTO点进行参数化几何变换以及对最佳参数集进行随机搜索来完成配准,该搜索可使变换后的CARTO点与LA表面之间的错位最小化。通过径向基函数插值在已配准的CT心房上进行后续的电生理信息融合。该算法通过模拟以及来自14例在消融手术前接受CT成像的患者的真实数据进行了验证。展示了结果,这些结果表明了算法方案的有效性以及融合过程的准确性和可重复性。所获得的结果鼓励将该融合方法应用于干预后消融评估和基础房颤研究,并建议开发用于消融干预期间导管引导的实时应用。

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