Title :
Conventional and reciprocal approaches to the inverse dipole localization problem of electroencephalography
Author :
Finke, Stefan ; Gulrajani, Ramesh M. ; Gotman, Jean
Author_Institution :
Inst. of Biomed. Eng., Montreal Univ., Que., Canada
fDate :
6/1/2003 12:00:00 AM
Abstract :
Forward transfer matrices relating dipole source to surface potentials can be determined via conventional or reciprocal approaches. In numerical simulations with a triangulated boundary-element three-concentric-spheres head model, we compare four inverse electroencephalogram (EEG) solutions: those obtained utilizing conventional or reciprocal forward transfer matrices, relating in each case source dipole components to potentials at either triangle centroids or triangle vertices. Single-dipole inverse solutions were obtained using simplex optimization with an additional position constraint limiting solution dipoles to within the brain region. Dipole localization errors are presented in all four cases, for varying dipole eccentricity and two different values of skull conductivity. Both conventional and reciprocal forward transfer matrices yielded inverse dipole solutions of comparable accuracy. Localization errors were low even for highly eccentric source dipoles on account of the nonlinear nature of the single-dipole solution and the position constraint. In the presence of Gaussian noise, both conventional and reciprocal approaches were also found to be equally robust to skull conductivity errors.
Keywords :
Gaussian noise; boundary-elements methods; electroencephalography; inverse problems; medical signal processing; minimisation; transfer function matrices; EEG; Gaussian noise; brain region; conventional approach; dipole eccentricity; dipole source; electroencephalography; forward transfer matrices; highly eccentric source dipoles; inverse dipole localization problem; inverse electroencephalogram solutions; localization errors; numerical simulations; position constraint; reciprocal approach; simplex optimization; single-dipole inverse solutions; single-dipole solution; skull conductivity; skull conductivity errors; solution dipoles; source dipole components; surface potentials; triangle centroids; triangle vertices; triangulated boundary-element three-concentric-spheres head model; Biomedical engineering; Brain modeling; Conductivity; Conductors; Electrodes; Electroencephalography; Inverse problems; Robustness; Scalp; Skull; Action Potentials; Algorithms; Brain; Brain Mapping; Computer Simulation; Electric Conductivity; Electroencephalography; Electromagnetic Fields; Head; Humans; Models, Neurological; Neurons; Reproducibility of Results; Sensitivity and Specificity; Skull;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2003.812198