THE MAGNETOCARDIOGRAM AS DERIVED FROM ELECTROCARDIOGRAPHIC DATA

被引:20
作者
VANOOSTEROM, A [1 ]
OOSTENDORP, TF [1 ]
HUISKAMP, GJ [1 ]
TERBRAKE, HJM [1 ]
机构
[1] TWENTE UNIV TECHNOL, DEPT APPL PHYS, ENSCHEDE, NETHERLANDS
关键词
Electrocardiogram; Forward problem; Magnetocardiogram; Torso geometry;
D O I
10.1161/01.RES.67.6.1503
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Magnetocardiographic signals, as present outside the thorax and generated by the depolarization process within the ventricles of the human heart, have been computed by using a model that incorporates the uniform double layer as the exclusively primary source. The volume conductor effects are treated by using an inhomogeneous, multicompartmental model of the thorax, based on 'tailored' geometry derived from magnetic resonance imaging. The required activation function, specifying the timing of the ventricular depolarization process, was derived from an inverse procedure that uses as input data electric signals measured at the body surface. Next, the magnetic signals from the same subjects were measured. A close correspondence between computed and measured magnetic signals was observed (relative root mean square residual difference of 0.37). These results demonstrate that magnetocardiograms and electrocardiograms have a common basis and that it is unlikely that prominent sources exist that are electrically silent and yet active in the genesis of the magnetic fields associated with the depolarization process of the heart. Moreover, fresh support is implied for the usefulness of the classical uniform double layer as the electrical source model during ventricular depolarization. The contributions of the secondary sources have previously been found to be a major component of the electric signals; they are now also shown to be a major component of the magnetic signals.
引用
收藏
页码:1503 / 1509
页数:7
相关论文
共 26 条
[1]   APPLICATION OF ELECTROMAGNETIC THEORY TO ELECTROCARDIOLOGY .2. NUMERICAL SOLUTION OF INTEGRAL EQUATIONS [J].
BARNARD, ACL ;
DUCK, IM ;
LYNN, MS ;
TIMLAKE, WP .
BIOPHYSICAL JOURNAL, 1967, 7 (05) :463-&
[2]   RELATING EPICARDIAL TO BODY-SURFACE POTENTIAL DISTRIBUTIONS BY MEANS OF TRANSFER-COEFFICIENTS BASED ON GEOMETRY MEASUREMENTS [J].
BARR, RC ;
RAMSEY, M ;
SPACH, MS .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1977, 24 (01) :1-11
[3]   DETECTION OF MAGNETIC FIELD OF HEART [J].
BAULE, G ;
MCFEE, R .
AMERICAN HEART JOURNAL, 1963, 66 (01) :95-&
[4]   MODEL STUDIES WITH THE INVERSELY CALCULATED ISOCHRONES OF VENTRICULAR DEPOLARIZATION [J].
CUPPEN, JJM ;
VANOOSTEROM, A .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1984, 31 (10) :652-659
[6]   A SIMULATION STUDY OF THE EFFECTS OF TORSO INHOMOGENEITIES ON ELECTROCARDIOGRAPHIC POTENTIALS, USING REALISTIC HEART AND TORSO MODELS [J].
GULRAJANI, RM ;
MAILLOUX, GE .
CIRCULATION RESEARCH, 1983, 52 (01) :45-56
[7]   SOLID ANGLE THEORY AND ECG - PHYSIOLOGY AND QUANTITATIVE INTERPRETATIONS [J].
HOLLAND, RP ;
ARNSDORF, MF .
PROGRESS IN CARDIOVASCULAR DISEASES, 1977, 19 (06) :431-457
[8]   DIGITAL MODEL FOR STUDIES IN MAGNETOCARDIOGRAPHY [J].
HORACEK, BM .
IEEE TRANSACTIONS ON MAGNETICS, 1973, MAG9 (03) :440-444
[9]   THE DEPOLARIZATION SEQUENCE OF THE HUMAN-HEART SURFACE COMPUTED FROM MEASURED BODY-SURFACE POTENTIALS [J].
HUISKAMP, G ;
VANOOSTEROM, A .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1988, 35 (12) :1047-1058
[10]   ON THE NUMERICAL ACCURACY OF THE BOUNDARY ELEMENT METHOD [J].
MEIJS, JWH ;
WEIER, OW ;
PETERS, MJ ;
VANOOSTEROM, A .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1989, 36 (10) :1038-1049