A field-compatible method for interpolating biopotentials

被引:15
作者
Burnes, JE
Kaelber, DC
Taccardi, B
Lux, RL
Ershler, PR
Rudy, Y
机构
[1] Case Western Reserve Univ, Dept Biomed Engn, Cardiac Bioelect Res & Training Ctr, Cleveland, OH 44106 USA
[2] Univ Utah, Cardiovasc Res & Training Inst, Salt Lake City, UT USA
关键词
interpolation; mapping; bioelectric potentials; inverse problem; epicardial potentials; body surface potential mapping;
D O I
10.1114/1.49
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Mapping of bioelectric potentials over a given surface (e.g., the torso surface, the scalp) often requires interpolation of potentials into regions of missing data. Existing interpolation methods introduce significant errors when interpolating into large regions of high potential gradients, due mostly to their incompatibility with the properties of the three-dimensional (3D) potential field. In this paper, an interpolation method, inverse-forward (LF) interpolation, was developed to be consistent with Laplace's equation that governs the 3D field in the volume conductor bounded by the mapped surface. This method is evaluated in an experimental heart-torso preparation in the context of electrocardiographic body surface potential mapping. Results demonstrate that IF interpolation is able to recreate major potential features such as a potential minimum and high potential gradients within a large region of missing data. Other commonly used interpolation methods failed to reconstruct major potential features or preserve high potential gradients. An example of IF interpolation with patient data is provided to illustrate its applicability in the actual clinical setting. Application of IF interpolation in the context of noninvasive reconstruction of epicardial potentials (the "inverse problem") is also examined. (C) 1998 Biomedical Engineering Society. [S0090-6964(98)01501-X].
引用
收藏
页码:37 / 47
页数:11
相关论文
共 28 条
  • [1] SELECTION OF NUMBER AND POSITIONS OF MEASURING LOCATIONS FOR ELECTROCARDIOGRAPHY
    BARR, RC
    SPACH, MS
    HERMANGI.GS
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1971, BM18 (02) : 125 - &
  • [2] Brebbia CA., 1984, BOUNDARY ELEMENT TEC, DOI DOI 10.1007/978-3-642-48860-3
  • [3] A MATHEMATICAL PROCEDURE FOR SOLVING THE INVERSE POTENTIAL PROBLEM OF ELECTROCARDIOGRAPHY - ANALYSIS OF THE TIME-SPACE ACCURACY FROM INVITRO EXPERIMENTAL-DATA
    COLLI-FRANZONE, P
    GUERRI, L
    TENTONI, S
    VIGANOTTI, C
    BARUFFI, S
    SPAGGIARI, S
    TACCARDI, B
    [J]. MATHEMATICAL BIOSCIENCES, 1985, 77 (1-2) : 353 - 396
  • [4] A CRITICAL-REVIEW OF CLINICAL-APPLICATIONS OF TOPOGRAPHIC MAPPING OF BRAIN POTENTIALS
    DASILVA, FHL
    [J]. JOURNAL OF CLINICAL NEUROPHYSIOLOGY, 1990, 7 (04) : 535 - 551
  • [5] DEAMBROGGI L, 1989, COMPREHENSIVE ELECTR, P1015
  • [6] GULRAJANI RM, 1988, CRIT REV BIOMED ENG, V16, P171
  • [7] Harder R.L., 1972, J. Aircr, V9, P189, DOI [DOI 10.2514/3.44330, 10.2514/3.44330., 10.2514/3.44330]
  • [8] HERINGA A, 1986, ELECTROCARDIOGRAPHIC, P171
  • [9] LEAD SYSTEM TRANSFORMATION FOR POOLING OF BODY-SURFACE MAP DATA - A SURFACE LAPLACIAN APPROACH
    HOEKEMA, R
    HUISKAMP, GJM
    OOSTENDORP, TF
    UIJEN, GJH
    VANOOSTEROM, A
    [J]. JOURNAL OF ELECTROCARDIOLOGY, 1995, 28 (04) : 344 - 345
  • [10] SPATIAL FEATURES IN BODY-SURFACE POTENTIAL MAPS CAN IDENTIFY PATIENTS WITH A HISTORY OF SUSTAINED VENTRICULAR-TACHYCARDIA
    HUBLEYKOZEY, CL
    MITCHELL, LB
    GARDNER, MJ
    WARREN, JW
    PENNEY, CJ
    SMITH, ER
    HORACEK, BM
    [J]. CIRCULATION, 1995, 92 (07) : 1825 - 1838