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Atrial fibrillation (AF) is commonly associated with atrial remodeling, including mechanical remodeling, electrophysiologic remodeling, and structural remodeling1. Structural remodeling will dramatically affect the anatomy of the atrium. Hence, assessing the left atrial anatomy in AF patients is essential for AF ablation procedures and any procedure targeting the left atrium. For the FAM 3D modeling, the 3D modeling of the heart is reconstructed based on the spatial position change of its position corresponding to the fixed magnetic field by continuously displacing the magnetic catheter in the heart. In contrast, ICE 3D modeling integrates the two-dimensional image in the cardiac cavity with the 3D electroanatomic mapping system by positioning the sensor at the head end of the ICE phase array catheter. Thus, the ultrasonic sector represents 3D modeling to demonstrate the anatomical relationship and real-time catheter position.
Based on our clinical experience, intracardiac echocardiography (ICE) can identify the atrial wall boundary and further establish the 3D remodel. However, most ICE usage during AF ablation or 3D remodeling just provides a brief profile of the atria or pulmonary veins. Originally, ICE was applied to guide the interventional closure of atrial septal defect and patent foramen ovale2. ICE can clarify the location and shape of the atrial septal and has been used for various interventional procedures requiring atrial septal puncture3. These include radiofrequency catheter ablation of atrial fibrillation, mitral valve interventional therapy, etc. ICE can precisely identify pulmonary vein boundaries and atrial walls to establish a more detailed 3D model3. It is unclear whether this method could provide operators with a more precise atrial anatomy assessment, especially for the pulmonary vein antrum and transseptal sites. In this study, we compared the left atrium CT image and 3D remodel established using traditional methods and precise ICE procedures to determine additional information.