WELL-POSED FORMULATION OF THE INVERSE PROBLEM OF ELECTROCARDIOGRAPHY

被引:20
作者
GREENSITE, F
机构
[1] Department of Radiological Sciences, Trailer 11, Route 140, University of California at Irvine, Medical Center, Orange, 92668, CA
关键词
INVERSE PROBLEM OF ELECTROCARDIOGRAPHY; INVERSE PROBLEMS; ILL-POSED PROBLEMS; ELECTROCARDIOLOGY;
D O I
10.1007/BF02390375
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
It has long been speculated that incorporation of available time constraints into the inverse electrocardiography problem could improve the accuracy of maps of epicardial potential or activation reconstructed from body surface potential measurements. However, all prior formulations of this problem have remained ill-posed, and the best way to utilize these constraints has been unclear. By making proper use of the timing information, we show that the inverse electrocardiography problem (for calculation of ventricular surface activation isochrones) is formally well-posed under anisotropic bidomain conditions and the assumption that ventricular muscle action potential phase 0 is a step discontinuity. In practical terms, this implies that non-regularized stable activation map solutions are possible if correlates of derived body surface potential derivative discontinuity times can be identified from the noisy analog signals, and only a small number of ventricular surface activation function extrema occur during a unit of time resolution defined by phase zero duration over the spatial extent of a bidomain point. We include a quasi-realistic numerical example illustrating the ease with which the extrema of the endocardial and epicardial activation maps are computed via Jump Maps derived from body surface potentials (this being the crucial step in rendering images of ventricular surface activation in this approach). The efficient signal processing algorithm used to accomplish this task is well suited to the setting of multiple extrema occurring during over-lapping phase zero time intervals.
引用
收藏
页码:172 / 183
页数:12
相关论文
共 30 条
[1]  
ANTZELEVITCH C, 1990, CARDIAC ELECTROPHYSI, P386
[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]   INVERSE CALCULATION OF QRS-T EPICARDIAL POTENTIALS FROM BODY-SURFACE POTENTIAL DISTRIBUTIONS FOR NORMAL AND ECTOPIC BEATS IN INTACT DOG [J].
BARR, RC ;
SPACH, MS .
CIRCULATION RESEARCH, 1978, 42 (05) :661-675
[4]   A MATHEMATICAL PROCEDURE FOR SOLVING THE INVERSE POTENTIAL PROBLEM OF ELECTROCARDIOGRAPHY - ANALYSIS OF THE TIME-SPACE ACCURACY FROM INVITRO EXPERIMENTAL-DATA [J].
COLLI-FRANZONE, P ;
GUERRI, L ;
TENTONI, S ;
VIGANOTTI, C ;
BARUFFI, S ;
SPAGGIARI, S ;
TACCARDI, B .
MATHEMATICAL BIOSCIENCES, 1985, 77 (1-2) :353-396
[5]   INTERCALATED DISKS AS A CAUSE FOR DISCONTINUOUS PROPAGATION IN CARDIAC-MUSCLE - A THEORETICAL SIMULATION [J].
DIAZ, PJ ;
RUDY, Y ;
PLONSEY, R .
ANNALS OF BIOMEDICAL ENGINEERING, 1983, 11 (3-4) :177-189
[6]  
Do Carmo M. P, 1976, DIFFERENTIAL GEOMETR, P162
[7]  
FOZZARD H, 1989, COMPREHENSIVE ELECTR, P85
[8]  
GIUSTI E, 1984, MINIMAL SURFACES FUN
[9]   A NEW METHOD FOR REGULARIZATION OF THE INVERSE PROBLEM OF ELECTROCARDIOGRAPHY [J].
GREENSITE, F .
MATHEMATICAL BIOSCIENCES, 1992, 111 (01) :131-154
[10]   SOME IMAGING PARAMETERS OF THE OBLIQUE DIPOLE LAYER CARDIAC GENERATOR DERIVABLE FROM BODY-SURFACE ELECTRICAL POTENTIALS [J].
GREENSITE, F .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1992, 39 (02) :159-164