Isolating motion responses in visual evoked potentials by preadapting flicker-sensitive mechanisms
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[1] N. Logothetis,et al. Role of the color-opponent and broad-band channels in vision , 1990, Visual Neuroscience.
[2] The peripheral flicker effect: Desensitization of the luminance pathway by static and modulated light , 1997, Vision Research.
[3] Michael Bach,et al. Directional tuning of human motion adaptation as reflected by the motion VEP , 2001, Vision Research.
[4] Karl J. Friston,et al. A direct demonstration of functional specialization in human visual cortex , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[5] D. Mackay,et al. Electroencephalogram Potentials evoked by Accelerated Visual Motion , 1968, Nature.
[6] G. Orban,et al. Motion-responsive regions of the human brain , 1999, Experimental Brain Research.
[7] M. Kuba,et al. Visual evoked potentials specific for motion onset , 2004, Documenta Ophthalmologica.
[8] P. Clarke. Visual evoked potentials to changes in the motion of a patterned field , 1973, Experimental Brain Research.
[9] VEP-Untersuchungen zur Kodierung der Geschwindigkeit bewegter Streifenmuster im Kortex des Menschen , 1985 .
[10] Robert Sekuler,et al. A two-dimensional analysis of direction-specific adaptation , 1980, Vision Research.
[11] Stefan Treue,et al. Seeing multiple directions of motion—physiology and psychophysics , 2000, Nature Neuroscience.
[12] P. Clarke,et al. Are visual evoked potentials to motion-reversal produced by direction-sensitive brain mechanisms? , 1974, Vision research.
[13] M Niedeggen,et al. Characteristics of visual evoked potentials generated by motion coherence onset. , 1999, Brain research. Cognitive brain research.
[14] Michael Bach,et al. Time course of motion adaptation: Motion-onset visual evoked potentials and subjective estimates , 1999, Vision Research.
[15] A. Dale,et al. Visual motion aftereffect in human cortical area MT revealed by functional magnetic resonance imaging , 1995, Nature.
[16] C W Clifford,et al. Adaptation to visual motion in directional neurons of the nucleus of the optic tract. , 1998, Journal of neurophysiology.
[17] J. Andreassi,et al. Hemispheric sex differences in response to apparently moving stimuli as indicated by visual evoked potentials. , 1982, The International journal of neuroscience.
[18] Michael Bach,et al. Motion adaptation governs the shape of motion-evoked cortical potentials , 1994, Vision Research.
[19] Ravi S. Menon,et al. Recovery of fMRI activation in motion area MT following storage of the motion aftereffect. , 1999, Journal of neurophysiology.
[20] B H Tsou,et al. Spectral sensitivity for flicker and acuity criteria. , 1988, Journal of the Optical Society of America. A, Optics and image science.
[21] C W Clifford,et al. A quadratic nonlinearity underlies direction selectivity in the nucleus of the optic tract , 1999, Visual Neuroscience.
[22] Wolzt,et al. World Medical Association Declaration of Helsinki: ethical principles for medical research involving human subjects. , 2003, The Journal of the American College of Dentists.
[23] M. Kuba,et al. Properties of visual evoked potentials to onset of movement on a television screen , 1990, Documenta Ophthalmologica.
[24] E. R. Cohen,et al. Close correlation between activity in brain area MT/V5 and the perception of a visual motion aftereffect , 1998, Current Biology.
[25] R. Sekuler,et al. The independence of channels in human vision selective for direction of movement. , 1975, The Journal of physiology.
[26] Michael Bach,et al. Visual motion detection in man is governed by non-retinal mechanisms , 2000, Vision Research.
[27] D. C. Van Essen,et al. Concurrent processing streams in monkey visual cortex , 1988, Trends in Neurosciences.
[28] R. Müller,et al. The influence of grating contrast on the human cortical potential visually evoked by motion. , 1988, Acta neurobiologiae experimentalis.
[29] Colin Blakemore,et al. Contrast dependence of motion-onset and pattern-reversal evoked potentials , 1995, Vision Research.
[30] Michael Bach,et al. The distinction between eye and object motion is reflected by the motion-onset visual evoked potential , 2002, Experimental Brain Research.
[31] Alexander Borst,et al. Principles of visual motion detection , 1989, Trends in Neurosciences.
[32] Visuell evozierte Potentiale bei Musterbewegung , 1983 .
[33] W. Newsome,et al. MT Tuning Bandwidths for Near-Threshold Stimuli in Area , 1998 .
[34] O. Braddick,et al. What is Noise for the Motion System? , 1996, Vision Research.
[35] D. Burr,et al. Temporal integration of optic flow, measured by contrast and coherence thresholds , 2001, Vision Research.
[36] Michael Bach,et al. Contrast dependency of motion-onset and pattern-reversal VEPs: Interaction of stimulus type, recording site and response component , 1997, Vision Research.
[37] L. Spillmann,et al. Flicker adaptation in the peripheral retina , 1987, Vision Research.
[38] Andrew J. Zele,et al. Flicker adaptation can be explained by probability summation between ON‐ and OFF‐mechanisms , 2000, Clinical & experimental ophthalmology.
[39] G G Celesia,et al. The effects of luminance and chromatic background flicker on the human visual evoked potential , 1996, Visual Neuroscience.
[40] C. Baker,et al. Residual motion perception in a "motion-blind" patient, assessed with limited-lifetime random dot stimuli , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[41] S. Graham,et al. Multifocal Pattern Electroretinogram does not demonstrate localised field defects in glaucoma , 2004, Documenta Ophthalmologica.
[42] R. Shapley,et al. The primate retina contains two types of ganglion cells, with high and low contrast sensitivity. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[43] P. Clarke,et al. Visual evoked potentials to sudden reversal of the motion of a pattern. , 1972, Brain research.
[44] P. Clarke,et al. Comparison of visual evoked potentials to stationary and to moving patterns , 1973, Experimental Brain Research.
[45] Isolation and characteristics of a steady-state visually-evoked potential in humans related to the motion of a stimulus , 1995, Vision Research.
[46] T. Albright. Direction and orientation selectivity of neurons in visual area MT of the macaque. , 1984, Journal of neurophysiology.
[47] H. Müller-Gärtner,et al. The motion aftereffect: more than area V5/MT? Evidence from 15O-butanol PET studies , 2001, Brain Research.
[48] W. Spileers,et al. Visually evoked potentials evoked by moving unidimensional noise stimuli: Effects of contrast, spatial frequency, active electrode location, reference electrode location, and stimulus type , 1998, Documenta Ophthalmologica.
[49] Guideline Thirteen: Guidelines for Standard Electrode Position Nomenclature , 1994, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society.