A FREQUENCY-DOMAIN ANALYSIS OF SPATIAL-ORGANIZATION OF EPICARDIAL MAPS

被引:40
作者
SIH, HJ
SAHAKIAN, AV
ARENTZEN, CE
SWIRYN, S
机构
[1] NORTHWESTERN UNIV,DEPT BIOMED ENGN,EVANSTON,IL 60201
[2] NORTHWESTERN UNIV,EVANSTON HOSP,SCH MED,DEPT SURG,EVANSTON,IL 60201
[3] NORTHWESTERN UNIV,EVANSTON HOSP,SCH MED,DEPT MED,EVANSTON,IL 60201
[4] NORTHWESTERN UNIV,DEPT ELECT ENGN & COMP SCI,EVANSTON,IL 60201
关键词
D O I
10.1109/10.391158
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Mapping of organized rhythms like sinus rhythm uses activation times from individual electrograms, and often assumes that the map for a single activation is similar to maps for subsequent activations, However, during fibrillation, activation times and electrograms are not easy to define, and maps change from activation to activation, Volume and complexity of data make analysis of more than a few seconds of fibrillation difficult. Magnitude Squared Coherence (MSC), a frequency domain measure of the phase consistency between two signals, can be used to help interpret longer data segments without defining activation times or electrograms, Sinus rhythm, flutter, and fibrillation in humans and swine were mapped with an array of unipolar electrodes (2.5 mm apart) at 240 sites on the atrial or ventricular epicardium, Four-second data segments were analyzed, One site near the center of the array was chosen ad hoc as a reference, MSC maps were made by measuring mean MSC from 0-50 Hz between every point in the array relative to the reference, Isocoherence contours were drawn, The effects of bias in the coherence estimate due to misalignment were investigated, Average MSC versus distance from the reference was measured for all rhythms, Results indicate that in a 4-s segment of fibrillation, there can exist some phase consistency between one site and the reference and little or none between a second site and the reference even when both sites are equidistant from the reference. In fibrillation, isocoherence contours are elongated and irregularly shaped, reflecting longterm, but nonuniform, spatial organization, That is, activation during fibrillation cannot be considered as random over a 4-s interval, Bias in the coherence estimate due to misalignment is significant for sinus rhythm and flutter, but can be corrected by manual realignment, Average MSC drops with distance for all rhythms, being most pronounced for fibrillation. MSC maps may provide insights into long-term spatial organization of rhythms that would otherwise be cumbersome and difficult to interpret with standard time domain analysis.
引用
收藏
页码:718 / 727
页数:10
相关论文
共 34 条
[1]  
Ideker R.E., Smith W.M., Blanchard S.M., Reiser S.L., Simpson E.V., Wolf P.D., Danieley N.D., The assumptions of isochronal cardiac mapping, PACE, 12, pp. 456-478, (1989)
[2]  
Gallagher J.J., Kasell J., Sealy W.C., Pritchett E.L.C., Wallace A.G., Epicardial mapping in the Wolff-Parkinson-White syndrome, Circulation, 57, pp. 854-866, (1978)
[3]  
Nikias C.L., Raghuveer M.R., Siegel J.H., Fabian M., The zerodelay wavenumber spectrum estimation for the analysis of array ECG signals—An alternative to isopotential mapping, IEEE Tram. Biomed. Eng., BME-33, pp. 435-451, (1986)
[4]  
Bayly P.V., Johnson E.E., Idriss S.F., Ideker R.E., Smith W.M., Efficient electrode spacing for examining spatial organization during ventricular fibrillation, IEEE Tram. Biomed. Eng., 40, pp. 1060-1066, (1993)
[5]  
Zuanetti G., Peirick J., Cain M.E., Arthur R.M., Corr P.B., Effects of conduction delay and prolonged repolarization on spectra of surface and epicardial ECG's, Circulation, 82, pp. IH-236, (1990)
[6]  
Berbari E.J., Ramachandran D., Lander P., Geselowitz D., Identifying uncertainty in epicardial activation maps, Proc. Comput. Cardiol. Conf., pp. 423-426, (1992)
[7]  
Berbari E.J., Lander P., Scherlag B.J., Lazzara R., Geselowitz D.B., Ambiguities of epicardial mapping, J. Electrocardiol., 24, pp. 16-20, (1992)
[8]  
Moe G.K., On the multiple wavelet hypothesis of atrial fibrillation, Arch. Int. Pharmacodynamic Therapie, 140, pp. 183-188, (1962)
[9]  
Gardner P.I., Ursell P.C., Fenoglio J.J., Wit A.L., Electrophysiologic and anatomic basis for fractionated electrograms recorded from healed myocardial infarcts, Circulation, 72, pp. 596-611, (1985)
[10]  
Spach M.S., Dolber P.C., Relating extracellular potentials and their derivatives to anisotropic propagation at a microscopic level in human cardiac muscle, Circ. Res., 58, pp. 356-371, (1986)