Literature DB >> 2419084

Magnetic localization of a dipolar current source implanted in a sphere and a human cranium.

D S Barth, W Sutherling, J Broffman, J Beatty.   

Abstract

Magnetic fields produced by a dipolar source implanted in a spherical conductor and a human cranial specimen were measured in the magnetoencephalogram (MEG). The location of the source was accurately computed in the spherical conductor from the identified magnetic field extrema using equations for a current dipole in a sphere. This same method was insufficient for localizing the source in a human cranium, where magnetic field maps appeared as distortions from the classical dipolar pattern. A more complete computer modeling procedure was used, adjusting for the non-spherical dimensions of the recording matrix on the cranium. By fitting the gradient of computer simulated fields to those measured outside the cranium, the accuracy of source localization was substantially improved. The greatest distortion of the extracranial magnetic field was an inequality in the measured amplitude of the two extrema, produced by an increased distance and angle of the MEG probe when recording over the lower face and ear. However, gross heterogeneities in the resistance of the skull due to a craniectomy and an implanted insulating balloon had a negligible effect on the extracranial magnetic field pattern.

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Year:  1986        PMID: 2419084     DOI: 10.1016/0013-4694(86)90094-5

Source DB:  PubMed          Journal:  Electroencephalogr Clin Neurophysiol        ISSN: 0013-4694


  19 in total

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Review 7.  EEG versus MEG localization accuracy: theory and experiment.

Authors:  D Cohen; B N Cuffin
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8.  Influence of head model in biomagnetic source localization.

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9.  Magnetoencephalographic spike sources associated with auditory auras in paediatric localisation-related epilepsy.

Authors:  I S Mohamed; H Otsubo; E Pang; S H Chuang; J T Rutka; P Dirks; S K Weiss; O C Snead
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10.  Effects of sutures and fontanels on MEG and EEG source analysis in a realistic infant head model.

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