• DocumentCode
    3404241
  • Title

    Derivative of Gaussian functions as receptive field models for disparity sensitive neurons of the visual cortex

  • Author

    Frye, Richard E. ; Ledley, Robert S.

  • Author_Institution
    Dept. of Physiol. & Biophys., Georgetown Univ. Med. Center, Washington, DC, USA
  • fYear
    1996
  • fDate
    29-31 Mar 1996
  • Firstpage
    270
  • Lastpage
    273
  • Abstract
    Non-symmetric Gabor functions are particularly useful neurophysiologic models of simple cell receptive fields which respond to disparity characteristics of visual stimuli. The left and right visual channels of these simple cell have receptive field profiles which are phase-shifted alterations of the same one-dimensional Gabor function. These profiles resemble derivative of Gaussian (DOG) functions, although DOG functions have never been evaluated using neurophysiologic data from disparity sensitive neurons. Here the authors demonstrate (a) the space frequency response characteristics of DOG functions as a model of a single receptive field, and (b) the space-frequency response characteristics of the combinations of two same-order DOG functions as a model of a simple cell disparity neuron which combine left and right receptive fields. Combining left and right visual fields in four different ways resulted in two characteristic patterns for both even and odd ordered derivatives. Each pattern appeared to be useful, in a different way, for detecting disparity information. These results suggest that DOG functions can be used to produce a set of equations for detecting disparity information
  • Keywords
    brain models; cellular biophysics; functions; neurophysiology; vision; Gaussian functions derivative; characteristic patterns; disparity sensitive neurons; left visual channel; neurophysiologic models; nonsymmetric Gabor functions; receptive field models; right visual channel; simple cell receptive fields; space frequency response characteristics; visual cortex; visual neurophysiology; Biophysics; Brain modeling; Eyes; Frequency response; Integral equations; Neurons; Physiology; Radio frequency; Shape;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Biomedical Engineering Conference, 1996., Proceedings of the 1996 Fifteenth Southern
  • Conference_Location
    Dayton, OH
  • Print_ISBN
    0-7803-3131-1
  • Type

    conf

  • DOI
    10.1109/SBEC.1996.493167
  • Filename
    493167