Rapid construction of a patient-specific torso model from 3D ultrasound for non-invasive imaging of cardiac electrophysiology

被引:0
作者
L. K. Cheng
G. B. Sands
R. L. French
S. J. Withy
S. P. Wong
M. E. Legget
W. M. Smith
A. J. Pullan
机构
[1] The University of Auckland,Bioengineering Institute
[2] Auckland City Hospital,undefined
[3] Middlemore Hospital,undefined
来源
Medical and Biological Engineering and Computing | 2005年 / 43卷
关键词
Model construction; Geometric model; 3D ultrasound; Validation; Inverse problem; Human heart;
D O I
暂无
中图分类号
学科分类号
摘要
One of the main limitations in using inverse methods for non-invasively imaging cardiac electrical activity in a clinical setting is the difficulty in readily obtaining high-quality data sets to reconstruct accurately a patient-specific geometric model of the heart and torso. This issue was addressed by investigation into the feasibility of using a pseudo-3D ultrasound system and a hand-held laser scanner to reconstruct such a model. This information was collected in under 20 min prior to a catheter ablation or pacemaker study in the electrophysiology laboratory. Using the models created from these data, different activation field maps were computed using several different inverse methods. These were independently validated by comparison of the earliest site of activation with the physical location of the pacing electrodes, as determined from orthogonal fluoroscopy images. With an estimated average geometric error of approximately 8 mm, it was also possible to reconstruct the site of initial activation to within 17.3 mm and obtain a quantitatively realistic activation sequence. The study demonstrates that it is possible rapidly to construct a geometric model that can then be used non-invasively to reconstruct an activation field map of the heart.
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页码:325 / 330
页数:5
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  • [1] Barr R. C.(1978)Inverse calculation of QRS-T epicardial potentials from body surface potential distributions for normal and ectopic beats in the intact dog Circ. Res. 42 661-675
  • [2] Spach M. S.(1997)Geometric modeling of the human torso using cubic Hermite elements Ann. Biomed. Eng. 25 96-111
  • [3] Bradley C. P.(2003)Comparison of potential and activation based formulations for the inverse problem of electrocardiology IEEE Trans. Biomed. Eng. 50 11-22
  • [4] Pullan A. J.(2003)The effect of experimental and modeling errors on electrocardiographic inverse problems IEEE Trans. Biomed. Eng. 50 23-32
  • [5] Hunter P. J.(2003)Heart-surface reconstruction and ECG electrodes localization using fluoroscopy, epipolar geometry and stereovision: Application to noninvasive imaging of cardiac electric activity IEEE Trans. Med. Imag. 22 1307-1318
  • [6] Cheng L. K.(1942)A simple, indifferent, electrocardiographic electrode of zero potential and a technique of obtaining augmented, unipolar, extremity leads Am. Heart J. 23 483-493
  • [7] Bodley J. M.(1998)An improved method for estimating epicardial potentials from the body surface IEEE Trans. Biomed. Eng. 45 98-104
  • [8] Pullan A. J.(1993)The use of the L-curve in the regularization of discrete ill-posed problems SIAM J. Sci. Comput. 14 1487-1503
  • [9] Cheng L. K.(1997)A new method for myocardial activation imaging IEEE Trans. Biomed. Eng. 44 433-446
  • [10] Bodley J. M.(1997)A new method for regularization parameter determination in the inverse problem of electrocardiography IEEE Trans. Biomed. Eng. 44 19-39