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R D Sidman

Publications and source records attributed to R D Sidman.

6 recordsLinked to original sources

Experimental tests of the cortical imaging technique--applications to the response to median nerve stimulation and the localization of epileptiform discharges.

In a previous paper a method for simulating the electric potentials on the surface of the brain was introduced. This method consisted of the construction of a layer of radially oriented current dipoles in a conducting sphere that simulated the head so that the voltages generated by the layer would take the values measured on the surface of the medium (the scalp). The harmonic potential function for this layer was then evaluated in the interior of the medium in an attempt to approximate the potentials that would be generated by the actual neural sources but which could not be observed without recourse to invasive recording techniques. This method, the cortical imaging technique (CIT), has been previously tested by applying it to artificially generated data where the "cortical surface" potentials were known and could be compared with CIT-generated potentials. In this paper the method is tested by applying it to the scalp-recorded potentials evoked by right median nerve stimulation, where direct cortical recordings are available for comparison, and to the scalp-recorded epileptiform discharges from two patients where the spike foci were well defined. The effects of varying the "noise ratio," an input parameter in CIT which allows one to account for noise in scalp-recorded data, is discussed.

Cerebral Cortex

Age-related features of the resting pattern-reversal visual evoked response using the dipole localization method and cortical imaging technique.

Two mathematical techniques, the dipole localization method (DLM) and the cortical imaging technique (CIT), are used to analyze the resting visual response to pattern-reversal stimulation. These methods identify certain age-related features of this evoked response that are not found by using standard topographic maps. These features include the symmetry of the N1 and P1 responses. The amplitudes of the N1 and P2 responses and the latency of N2 are also significantly different between old and young groups of test subjects, findings consistent with differences seen in conventional topographical analyses. Theoretical dipole sources and simulated cortical surface maps are also constructed for the "average" normal older subject and one patient with documented progressive frontal lobe degenerative disease. Standard topographical imaging studies of this patient were unremarkable, except for the P300 auditory response. DLM and CIT analyses of the VER components were exceptional and consistent with the clinical diagnosis. These mathematical methods appear to enhance the discriminating power of traditional electrophysiological measures.

Adult

A method for simulating intracerebral potential fields: the cortical imaging technique.

Source localization techniques such as the dipole localization method (DLM) have been used to elucidate the neural origins of scalp-recorded potentials. The type of source assumed in such techniques is usually suggested by the distribution of voltage maximums and minimums in scalp topographical contour maps. Unfortunately, the physical layers between the neural generators and scalp recording sites tend to smear and attenuate the potential fields, making it impossible, in some cases, to distinguish between single and multiple sources or extended layers. In this report, a mathematical (noninvasive) technique is described for simulating the potential fields that could be recorded directly on the surface of the brain. Such "cortical" potential fields exhibit details that are not apparent in the scalp topography. In several recent publications, this cortical imaging technique (CIT) has been tested on artificial and experimental data. After describing these results, some possible applications of CIT to clinical data will be presented.

Aged

Numerical tests of a method for simulating electrical potentials on the cortical surface.

A mathematical imaging method for simulating cortical surface potentials was introduced at recent neurosciences meetings [1a], [1b], [2] and was applied to elucidate the neural origins of evoked responses in normal volunteers and certain patient populations. This method consists of the solution of an inward harmonic continuation problem and its effect is to simulate data that has not been attenuated and smeared by the skull. This cortical imaging technique (CIT) is validated by applying it to artificially derived data. Pairs of dipolar sources with different depths and separations are introduced into a spherical conducting medium simulating the head. Scalp potential maps are constructed by interpolating the simulated data between 28 "scalp" electrode positions. Noise is added to the data to approximate the variability in measured potentials that would be observed in practice. CIT is used in each case to construct potential maps on layers concentric to and within the layer representing the scalp. In several instances when the dipole pair is deep and closely spaced, the sources cannot be separated by the scalp topographical maps but are easily separated by the "cortical" topographical maps. CIT is also applied to scalp-recorded potentials evoked by bilateral median nerve stimulation and pattern-reversal visual stimulation.

Brain Mapping

Age-related features of the resting and P300 auditory evoked responses using the dipole localization method and cortical imaging technique.

Two mathematical techniques, the dipole localization method (DLM) and the cortical imaging technique (CIT), are used to analyze the resting and P300 auditory responses in young and old normal volunteers. These methods identify certain age-related features of these evoked responses that are not found by standard topographic methods. These features include the orientation of the P200 resting response, and the laterality of the N120 response, and the eccentricity of the P300 response in the P300 stimulus condition. Theoretical dipole sources and simulated cortical surface maps are also constructed for one normal subject and one psychiatric inpatient and compared. These mathematical methods appear to enhance the discriminating power of traditional electrophysiological measures.

Adult

A method for localization of sources of human cerebral potentials evoked by sensory stimuli.

A method based on potential field theory is described for assessing the location and orientation of dipole generators of the human scalp-recorded sensory evoked potential (EP). The method assumes that the EP at a given moment is due to a single dipole source and that the head can be modeled by a homogeneous conductive sphere (brain) surrounded by inner (skull) and outer (scalp) shells of differing conductivity (three-sphere model). Solution for source location and orientation from the surface potential field is given for the case of a single homogeneous sphere (one-sphere model). It is then shown that a unique solution for the three-sphere model can be derived from the one-sphere solution. Solutions are obtained by application of an iterative procedure which minimizes the error between calculated and empirical potential fields. A test of the method is described in which the calculated location and orientation of a dipole was in good agreement with the known source of an early component of the human somatosensory EP.

Brain