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Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models.

Publication ,  Journal Article
Moffitt, MA; McIntyre, CC; Grill, WM
Published in: IEEE transactions on bio-medical engineering
February 2004

Computer models of neurons are used to simulate neural behavior, and are important tools for designing neural prostheses. Computation time remains an issue when simulating large numbers of neurons or applying models to real time applications. Warman et al. developed a method to predict excitation thresholds for axons using linear models and a predetermined critical voltage. We calculated threshold prediction error as a function of the location of an extracellular electrode using two different axon models to examine further threshold prediction using linear models. Threshold prediction error was low (<3% error) under the conditions examined by Warman et al., but under more general conditions, threshold prediction error was as high as 23.6%. Linear models were limited as effective tools for single fiber threshold prediction because accuracy was dependent on the nonlinear and linear models used, and any parameter that affected the extracellular potential distribution. Threshold prediction could be improved by appropriately choosing the membrane conductance of the linear model, but determination of an optimal conductance was computationally expensive. Finally, although single fiber threshold prediction error was partially masked when considering the input-output (I/O) properties of populations of axons, relatively large errors still occurred in population I/O curves generated with linear models.

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Published In

IEEE transactions on bio-medical engineering

DOI

EISSN

1558-2531

ISSN

0018-9294

Publication Date

February 2004

Volume

51

Issue

2

Start / End Page

229 / 236

Related Subject Headings

  • Sensitivity and Specificity
  • Reproducibility of Results
  • Recruitment, Neurophysiological
  • Nonlinear Dynamics
  • Nerve Fibers, Myelinated
  • Models, Neurological
  • Membrane Potentials
  • Linear Models
  • Electromagnetic Fields
  • Electric Stimulation
 

Citation

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Moffitt, M. A., McIntyre, C. C., & Grill, W. M. (2004). Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models. IEEE Transactions on Bio-Medical Engineering, 51(2), 229–236. https://doi.org/10.1109/tbme.2003.820382
Moffitt, Michael A., Cameron C. McIntyre, and Warren M. Grill. “Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models.IEEE Transactions on Bio-Medical Engineering 51, no. 2 (February 2004): 229–36. https://doi.org/10.1109/tbme.2003.820382.
Moffitt MA, McIntyre CC, Grill WM. Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models. IEEE transactions on bio-medical engineering. 2004 Feb;51(2):229–36.
Moffitt, Michael A., et al. “Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models.IEEE Transactions on Bio-Medical Engineering, vol. 51, no. 2, Feb. 2004, pp. 229–36. Epmc, doi:10.1109/tbme.2003.820382.
Moffitt MA, McIntyre CC, Grill WM. Prediction of myelinated nerve fiber stimulation thresholds: limitations of linear models. IEEE transactions on bio-medical engineering. 2004 Feb;51(2):229–236.

Published In

IEEE transactions on bio-medical engineering

DOI

EISSN

1558-2531

ISSN

0018-9294

Publication Date

February 2004

Volume

51

Issue

2

Start / End Page

229 / 236

Related Subject Headings

  • Sensitivity and Specificity
  • Reproducibility of Results
  • Recruitment, Neurophysiological
  • Nonlinear Dynamics
  • Nerve Fibers, Myelinated
  • Models, Neurological
  • Membrane Potentials
  • Linear Models
  • Electromagnetic Fields
  • Electric Stimulation