• DocumentCode
    1146047
  • Title

    Comparison of potential- and activation-based formulations for the inverse problem of electrocardiology

  • Author

    Cheng, Leo K. ; Bodley, John M. ; Pullan, Andrew J.

  • Author_Institution
    Bioeng. Inst., Auckland Univ., New Zealand
  • Volume
    50
  • Issue
    1
  • fYear
    2003
  • Firstpage
    11
  • Lastpage
    22
  • Abstract
    Two predominant source formulations for the inverse problem of electrocardiology currently exist. They involve the reconstruction of epicardial potentials or myocardial activation times from noninvasively recorded torso surface potentials. Each of these formulations have their advantages, however, they have not been systematically compared against each other. We present results from a simulation study which compared a number of epicardial potential formulations (Tikhonov, truncated singular value decomposition (TSVD), Greensite-Tikhonov and Greensite-TSVD), and a myocardial activation time formulation for the inverse problem of electrocardiology. A number of different methods were also used to determine the appropriate level of regularization (optimal, L-curve, zero-crossing, and composite residual and smoothing operator) to apply to each formulation. The simulation study was conducted using an anatomically based boundary element porcine model with a variety of cardiac sources. Varying levels of geometric error were introduced to the system and solutions were computed using each of the inverse algorithms. Results show that under pure Gaussian noise potential-based methods performed best at low noise levels while the activation-based method was less effected by higher noise levels. In the presence of correlated geometric error, the activation-based method out performed the potential methods, with the Greensite-Tikhonov method being the most favored potential-based method when using the L-curve or zero-crossing method to determine the regularization parameter.
  • Keywords
    Gaussian noise; bioelectric potentials; boundary-elements methods; electrocardiography; inverse problems; medical signal processing; muscle; physiological models; signal reconstruction; singular value decomposition; Greensite-TSVD; Greensite-Tikhonov method; L-curve; activation-based formulations; anatomically based boundary element porcine model; cardiac sources; composite residual; electrocardiology; epicardial potential; geometric error; inverse problem; low noise levels; myocardial activation time formulation; optimal method; potential-based formulations; pure Gaussian noise potential-based methods; regularization level; simulation study; smoothing operator; truncated singular value decomposition; zero-crossing method; Biomedical engineering; Electrocardiography; Heart; Inverse problems; Myocardium; Noise level; Singular value decomposition; Smoothing methods; Surface reconstruction; Torso; Algorithms; Anatomy, Cross-Sectional; Animals; Body Surface Potential Mapping; Computer Simulation; Electrocardiography; Heart; Heart Conduction System; Imaging, Three-Dimensional; Models, Cardiovascular; Normal Distribution; Quality Control; Reproducibility of Results; Sensitivity and Specificity; Stochastic Processes; Swine;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2002.807326
  • Filename
    1179127