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Original Article

Infant visual development: An overview of studies using visual evoked potential measures from harter to the present

Pages 203-235 | Published online: 07 Jul 2009

References

  • Apkarian P. Albinism. Principles and practice of clinical electrophysiology of vision, J. R. Heckenlively, G. B. Arden. Mosby-Year Book, Inc, St. Louis, MO 1991a; 773–782
  • Apkarian P. Methodology of testing for albinism with visual evoked cortical potentials. Principles and practice of clinical electrophysiology of vision, J. R. Heckenlively, G. B. Arden. Mosby-Year Book, Inc, St. Louis, MO 1991b; 425–434
  • Apkarian P., Levi D., Tyler C. W. Binocular facilitation in the visual-evoked potential of strabismic amblyopes. American Journal of Optometry & Physiological Optics 1981; 58(10)820–830
  • Apkarian P., Mirmiran M., Tijssen R. Effects of behavioral state on visual processing in neonates. Neuropediatrics 1991; 22: 85–91
  • Apkarian P., Nakayama K., Tyler C. W. Binocularity in the human visual evoked potential: Facilitation, summation and suppression. Electroencephalography and clinical neurophysiology 1981; 51: 32–48
  • Apkarian P., Reits D., Spekreijse H., Van Dorp D. A. A decisive electrophysiological test for human albinism. Electroencephalography and Clinical Neurophysiology 1983; 55: 513–531
  • Apkarian P., Shallo-Hoffmann J. VEP projections in congenital nystagmus; VEP asymmetry in albinism: A comparison study. Investigative Ophthalmology and Visual Science 1991; 32(9)2653–2661
  • Apkarian P., Spekreijse H. The VEP and misrouted pathways in human albinism. Evoked potentials, R. Q. Cracco, I. Bodis-Wollner. Alan R. Liss, New York 1986; 211–226
  • Atkinson J., Braddick O. Development of optokinetic nystagmus in infants: An indicator of cortical binocularity. Eye movements: Cognition and visual perception, D. F. Fisher, R. A. Monty, J. W. Senders. Lawrence Erlbaum Assoc., Inc, New Jersey 1981; 53–64
  • Bach M., Kommerell G. Das Uberwiegen kreuzender sehnervenfasem ist ein charakteristikum des al-binismus, aber nicht der dissoziierten vertikal-deviation. Fortschr. Ophthalmology 1989; 86: 253
  • Baitch L. W., Levi D. M. Evidence for nonlinear binocular interactions in human visual cortex. Vision Research 1988; 28(10)1139–1143
  • Baitch L. W., Ridder W. H., Harwerth R. S., Smith E. L. Binocular beat VEPs: Losses of cortical binocularity in monkeys reared with abnormal visual experience. Investigative Ophthalmology and Visual Science 1991; 32(12)90–97
  • Baitch L., Srebro R. Binocular interactions in sleeping and awake human infants. Investigative Ophthalmology and Visual Science (Suppl.) 1990; 31(4)251
  • Banks M. S., Dannemiller J. L. Infant visual psychophysics. Handbook of infant perception. From sensation to perception, P. Salapatek, L. Cohen. Academic Press, New York 1987; Vol. 1: 115–184
  • Banks M. S., Salapatek P. Acuity and contrast sensitivity in 1-, 2-, and 3-month-old human infants. Investigative Ophthalmology and Visual Science 1978; 17(4)361–365
  • Banks M. S., Salapatek P. Infant visual perception. Handbook ofchild psychology, M. Haith, J. Campos, P. Musson. Wiley, New York 1983; 435–571, Biology and infancy In
  • Barnet A. B., Manson J. I., Wilner E. Acute cerebral blindness in childhood. Neurology 1970; 20: 1147–1156
  • Bodis-Wollner I., Atkin A., Raab E., Wolkstein M. Visual association cortex and vision in man. Pattern-evoked occipital potentials in a blind boy. Science 1977; 198: 629–631
  • Boothe R. G., Dobson V., Teller D. Y. Postnatal development of vision in human and nonhuman primates. Annual Review of Neuroscience 1985; 8: 495–545
  • Boylan C., Clement R. A., Howrie A. Normal visual pathway routing in dissociated vertical deviation. Investigative Ophthalmology and Visual Science 1988; 29: 1165
  • Braddick O., Atkinson J., Julesz B., Kropfl W., Bodis-Wollner I., Raab E. Cortical binocularity in infants. Nature 1980; 288: 363–385
  • Braddick O., Wattam-Bell J., Day J., Atkinson J. The onset of binocular function in human infants. Human Neurobiology 1983; 2: 65–69
  • Brown A. M. Development of visual sensitivity to light and color vision inhuman infants: a critical review. Vision Research 1990; 30(8)1150–1188
  • Campbell F. W., Maffei L. Electrophysiological evidence for the existence of orientation and size detectors in the human visual system. Journal of Physiology 1970; 207: 635–652
  • Crooks J., Morrison J. D. Synapses of the inner plexiform layer of the area centralis of kitten retina during postnatal development: A quantitative study. Journal of Anatomy 1989; 163: 33–47
  • Dacey D., Petersen M. R. Dendritic field size and morphology of the midget and parasol ganglion cells of the human retina. Proceedings of the National Academy of Science, USA 1992; 89: 9666–9670
  • De Vries-Khoe L. H., Spekreijse H. Maturation of luminance and pattern EPs in man. Document Ophthalmology Proceedings Series, G. Niemeyer, Ch. Huber. Dr. W. Junk Publishers, The Hague 1982; Vol. 31: 461–475
  • Dobson V. Spectral sensitivity of the 2-month infant as measured by the visually evoked cortical potential. Vision Research 1976; 16: 364–367
  • Dobson V. Visual acuity testing by preferential looking techniques. The eye in infancy 2nd ed., S. Isenberg. Mosby-Year Book, Inc, St. Louis 1994; 131–156
  • Dobson V., Teller D., Ping Lee C., Wade B. A behavioral method for efficient screening of visual acuity of young infants. Investigative Ophthalmology and Visual Science 1978; 17(12)1142–1150
  • Eizenman M., Skarf B., McCuIloch D. Detection of early development of binocular vision in infants. Investigative Ophthalmology and Visual Science (Suppl.) 1988; 29: 25
  • Eizenman M., Skarf B., McCulloch D. Development of binocular vision in infants. Investigative Ophthalmology and Visual Science (Suppl.) 1989; 30(3)313
  • Famiglietti E. V., Kolb H. Structural basis for ON- and OFF-center responses in retinal ganglion cells. Science 1976; 194: 193–195
  • Fantz R. L. A method for studying early visual development. Perception and Motor Skills 1956; 6: 13–45
  • Fantz R. L. Pattern vision in young infants. Psychological Record 1958; 8: 43–47
  • Fantz R. L. The origin of form perception. Scientific American 1961; 204: 66–72
  • Fiorentini A., Pirchio M., Sandini G. Development of retinal acuity in infants evaluated with pattem-electroretinogram. Human Neurobiology 1984; 3: 93–95
  • Fiorentini A., Trimarchi C. Temporal properties of pattern electroretinograms (PERGs) in infants. Perception 1989; 18: 491–492
  • Fiorentini A., Trimarchi C. Development of temporal properties of pattern electroretinogram and visual evoked potentials in infants. Vision Research 1992; 32(9)1609–1621
  • Fitzgerald B. A., Billson F. A. Dissociated vertical deviation. Evidence of abnormal visual pathway projection. British Journal of Ophthalmology 1984; 68: 801
  • Fosse V. M., Heggelund P., Fonnum F. Postnatal development of glutamatergic, GABAergic, and cholinergic neurotransmitter phenotypes in the visual cortex, lateral geniculate nucleus, pulvinar, and superior colliculus in cats. Journal of Neuroscience 1989; 9: 426–435
  • Frank Y., Torres F. Visual evoked potentials in the evaluation of cortical blindness in children. Annual of Neurology 1979; 6(2)126–129
  • Fulton A. B., Hansen R. M. Background adaptation in human infants: analysis of B-wave results. Documenta Ophthalmologica Proceedings 1982; 31: 191–197
  • Fulton A. B., Hansen R. M. Electroretinography: Application to clinical studies with infants. Journal of Pediatric Ophthalmology and Strabismus 1985; 22: 251–257
  • Fulton A. B., Hansen R. M. The relationship of retinal sensitivity and rhodopsin in human infants. Vision Research 1987; 27(5)697–704
  • Fulton A. B., Hartmann E. E., Hansen R. M. Electrophysiologic testing techniques for children. Documenta Ophthalmologica 1989; 71(4)341–354
  • Gottlob I., Fendick M. G., Guo S., Zubcov A. A., Odom J. V., Reinecke R. D. Visual acuity measurements by swept spatial frequency visual-evoked-cortical-potentials (VECPs): Clinical application in children with various visual disorders. Journal of Pediatric Ophthalmology and Strabismus 1990; 27(1)40–47
  • Grose J., Zemon V., Gordon J., Hainline L. Temporal tuning and the development of lateral interaction in human infants. Investigative Ophthalmology and Visual Science (Suppi) 1990; 31(4)251
  • Hainline L., Abramov I. Assessing visual development: Is infant vision good enough. Advances in infancy research, C. Rovee-Collier, L. P. Lipsitt. Ablex Publishing Corp, Norwood, NJ 1992; Vol. 7: 39–102
  • Hamer R. D., Alexander K. R., Teller D. Y. Rayleigh discriminations in young human infants. Vision Research 1982; 22(5)575–587
  • Hamer R. D., Norcia A. M., Tyler C. W., Hsu-Winges C. The development of monocular and binocular VEP acuity. Vision Research 1989; 29(4)397–408
  • Harter M. R., Deaton F. K., Odom J. V. Maturation of evoked potentials and visual preference in 6–45-day-old infants: effects of check size, visual acuity and refractive error. Electroencephalography and Clinical Neurophysiology 1977; 42: 595–607
  • Harter M. R., Suitt C. Visually-evoked cortical responses and pattern vision in the infant: A longitudinal study. Psychonomic Science 1970; 18(4)235–237
  • Harter M. R., White C. T. Effects of contour sharpness and check-size on visually evoked cortical potentials. Vision Research 1968; 8: 701–711
  • Harter M. R., White C. T. Evoked cortical responses to checkerboard patterns: Effect of check-size as a function of visual acuity. Electroencephalography and Clinical Neurophysiology 1970; 28: 48–54
  • Hartmann E. E., Banks M. S. Temporal contrast sensitivity in human infants. Vision Research 1992; 32(6)1163–1168
  • Hartmann E. E., Hitchcox S. M., Zemon V. Development of pattern responses to contrast-increment and decrement stimuli in infants: A VEP measure of functional subsystems. Investigative Ophthalmology and Visual Science 1992; 33(4)1351, (Suppl.)
  • Hartmann E. E., Succop A., Buck S. L., Weiss A. H., Teller D. Y. Quantification of monocular optokinetic nystagmus asymmetries and motion perception with motion nulling techniques. Journal of the Optical Society of America 1993; 10(8)1835–1840
  • Hickey T. L. Postnatal development of the human lateral geniculate nucleus: Relationship to a critical period for the visual system. Science 1977; 198: 836–838
  • Hitchcox S. M., Hartmann E. E., Karr D. K. Effects of temporal rate on visual evoked potential acuity estimates in young infants and children. Investigative Ophthalmology and Visual Science (Suppl.) 1991; 32(4)964
  • Hoyt C. S. The clinical usefulness of the visual evoked response. Journal of Pediatric Ophthalmology and Strabismus 1984; 21(6)231–234
  • Hubel D. H., Livingstone M. S. Color and contrast sensitivity in the lateral geniculate body and primary visual cortex of the macaque monkey. Journal of Neuroscience 1990; 10(1)2223–2237
  • Ikeda H., Robbins J. Development of neurochemical separation of ON and OFF channels at retinal ganglion cells. Documenta Ophthalmologica 1988; 69: 175–186
  • James W. The principles of psychology. Dover, New York 1890
  • Jasper H. H. The 10–20 electrode system of the International Federation. Electroencephalography and Clinical Neurophysiology 1958; 10: 371–375
  • Jeffreys D. A. The physiological significance of pattern visual evoked potentials. Visual evoked potentials in man, J. E. Desmedt. Clarendon, Oxford 1977; 134–167
  • Jeffreys D. A., Smith A. T. The polarity inversion of scalp potentials evoked by upper and lower half-field stimulus patterns: Latency of surface distribution differences. Electroencephalography and Clinical Neurophysiology 1979; 46: 409–415
  • Julesz B. Foundations of cyclopean perception. University of Chicago Press, Chicago 1971
  • Kaplan E., Shapley R. X and Y cells in the lateral geniculate nucleus of macaque monkeys. Journal of Physiology 1982; 330: 125–143
  • Kaplan E., Shapley R. The primate retina contains two types of ganglion cells with high- and low-contrast sensitivity. Proceedings of the National Academy of Science USA 1986; 83: 2755–2757
  • Karmei B. Z., Hoffmann R. F., Fegy M. J. Processing of contour information by human infants evidenced by pattern-dependent evoked potentials. Child Development 1974; 45: 39–48
  • Katz L. M., Eizenman M., Skarf B. VEP measurements of cortical binocularity in adults and infants using dichoptic checkerboard stimuli. Investigative Ophthalmology and Visual Science 1991; 32(A)964, (Suppl.)
  • Kriss A., Timms T., Elston J., Taylor D., Gresty M. Visual evoked potentials in dissociated vertical deviation. A reappraisal. British Journal of Ophthalmology 1989; 73: 265
  • Kuffler S. Discharge patterns and functional organization of mammalian retina. Journal of Neurophysiology 1953; 16: 37–68
  • Lennie P. Parallel visual pathways: A review. Vision Research 1980; 20: 561–594
  • Lennie P., Trevarthen C., Waessle H., Van Essen D. Parallel processing of visual information. Visual perception: The neurophysiologies foundations, L. Spillman, J. Werner. Academic Press, Inc, New York 1989; 103–128, Ch. 6
  • Livingstone M. S., Hubel D. Anatomy and physiology of a color system in the primate visual cortex. Journal of Neuroscience 1984; 4: 309–356
  • Livingstone M. S., Hubel D. Segregation of form, color, movement, and depth: Anatomy, physiology, and perception. Science 1988; 240: 740–749
  • Marg E., Freeman D. N., Peltzman P., Goldstein P. J. Visual acuity development in human infants: Evoked potential measurements. Investigative Ophthalmology and Visual Science 1976; 15(2)150–153
  • Marozas D. S., May D. C. Effects of figure-ground reversal on the visual-perceptual and visuo-motor performances of cerebral palsied and normal children. Perceptual and Motor Skills 1985; 60: 591–598
  • Marozas D. S., May D. C. Research on effects of color reversal on the visual perceptual and visuo-motor performances of spastic cerebral palsied and other exceptional individuals. Perceptual and Motor Skills 1986; 60: 595–607
  • McCulloch D. L., Skarf B. Development of the human visual system: Monocular and binocular pattern VEP latency. Investigative Ophthalmology and Visual Science 1991; 32(8)2372–2381
  • McCulloch D. L., Skarf B. A two stage model for maturation of visual evoked potential (VEP) latency in infants. Investigative Ophthalmology and Visual Science (Suppl.) 1993; 34(4)1353
  • McDonald M., Dobson V., Sebris S. L., Baitch L., Varner D., Teller D. Y. The acuity card procedure: A rapid test of infant acuity. Investigative Ophthalmology and Visual Science 1985; 26(8)1158–1162
  • McDonald M. A., Sebris S. L., Mohn G., Teller D. Y., Dobson V. Monocular acuity in normal infants: The acuity card procedure. American Journal of Optometry and Physiological Optics 1986a; 63(2)127–134
  • McDonald M. A., Ankrum C., Preston K., Sebris S. L., Dobson V. Monocular and binocular acuity estimation in 18- to 36-month-olds: Acuity card results. American Journal of Optometry and Physiological Optics 1986b; 63(3)181–186
  • Merigan W. H. P & M pathway specialization in the macaque. From pigments to perception: Advances in understanding visual processes, A. Valberg, B. B. Lee. Plenum Press, New York 1991; 117–125
  • Michael W. F., Halliday A. M. Differences between the occipital distribution of the upper and lower field pattern-evoked responses in man. Brain Research 1971; 32: 311–329
  • Moskowitz A., Sokol S. Spatial and temporal interaction of pattern-evoked cortical potentials in human infants. Vision Research 1980; 20: 699–707
  • Moskowitz A., Sokol S. Developmental changes in the human visual system as reflected by the latency of the pattern reversal VEP. Electroencephalography and Clinical Neurophysiology 1983; 56: 1–15
  • Moskowitz A., Sokol S. Development of lateral interactions in the infant visual system. Investigative Ophthalmology and Visual Science (Suppl.) 1989; 30(3)312
  • Moskowitz-Cook A. The development of photopic spectral sensitivity in human infants. Vision Research 1979; 19: 1133–1142
  • Naegele J. R., Held R. The postnatal development of monocular optokinetic nystagmus in infants. Vision Research 1982; 22: 341–346
  • Nelson R., Famiglietti E. V., Kolb H. Intracellular staining reveals different levels of stratification for ON- and OFF-center ganglion cells in the cat retina. Journal of Neurophysiology 1978; 41: 472–483
  • Nishimura Y., Rakic P. Development of the rhesus monkey retina: II. A three-dimensional analysis of the sequences of synaptic combinations in the inner plexiform layer. Journal of Comparative Neurology 1987; 262: 290–313
  • Norcia A. M., Garcia H., Humphrey R., Holmes A., Hamer R. D., Orel-Bixler D. Anomolous motion VEPs in infants and in infantile esotropia. Investigative Ophthalmology and Visual Science 1991; 32(2)436–439
  • Norcia A. M., Hamer R. D., Orel-Bixler D. Temporal tuning of the motion VEP in infants. Investigative Ophthalmology and Visual Science (Suppl.) 1990; 31(4)10
  • Norcia A. M., Tyler C. W. Spatial frequency sweep VEP: Visual acuity during the first year of life. Vision Research 1985a; 25(10)1399–1408
  • Norcia A. M., Tyler C. W. Infant VEP acuity measurements: Analysis of individual differences and measurement error. Electroencephalography and Clinical Neurophysiology 1985b; 61(5)359–369
  • Norcia A. M., Tyler C. W., Allen D. Electrophysiological assessment of contrast sensitivity in human infants. American Journal of Optometry and Physiological Optics 1986; 61: 12–15
  • Norcia A. M., Tyler C. W., Hamer R. D. Development of contrast sensitivity in the human infant. Vision Research 1990; 30(10)1475–1486
  • Norcia A. M., Tyler C. W., Hamer R. D., Wesemann W. Measurement of spatial contrast sensitivity with the swept contrast VEP. Vision Research 1989; 29(5)627–637
  • Odom J. V., Green M. Visually evoked potential (VEP) acuity: Testability in a clinical pediatric population. Acta Ophthalmologica 1984; 62: 993–998
  • Odom J. V., Harter M. R. Interocular suppression in adults and infants using anaglyphic stimuli: Visually evoked potential measures. Electroencephalography and Clinical Neurophysiology 1983; 56: 232–243
  • Odom J. V., Hoyt C. S., Marg E. Eye patching and visual evoked potential acuity in children four months to eight years old. American Journal of Optometry & Physiological Optics 1982; 59(9)706–717
  • Odom J. V., Maida T., Dawson W. W. The human pattern evoked retinal response: Effects of spatial frequency, temporal frequency, luminance, and defocus. Current Eye Research 1982; 2: 99–108
  • Orel-Bixler D. A., Norcia A. M. Differential growth of acuity for steady-state pattern reversal and transient pattern onset-offset VEPs. Clinical Vision Sciences 1987; 2(1)1–9
  • Ossenblok Pauly. The sources of the pattern VEP in man. University of Amsterdam. 1992, Dissertation
  • Perry V. H., Oehler R., Cowey A. Retinal ganglion cells that project to the dorsal lateral geniculate nucleus in the macaque monkey. Neuroscience 1984; 12(4)1101–1123
  • Petrig B., Julesz B., Kropfl W., Baumgartner G., Anliker M. Development of stereopsis and cortical binocularity in human infants: Electrophysiological evidence. Science 1981; 213: 1402–1405
  • Petrig B., Julesz B., Lehmann D., Lang J. Assessment of stereopsis in infants and children, using dynamic random-dot pattern evoked potentials. Documenta Ophthalmologica Proceedings 1982; 31: 477–482
  • Pirchio M., Spinelli D., Fiorentini A., Maffei L. Infant contrast sensitivity evaluated by evoked potentials. Brain Research 1978; 141: 179–184
  • Ratliff F. Mach bands: Quantitative studies on neural networks in the retina. Holden-Day Press, San Francisco 1965
  • Regan D. Some characteristics of average steady-state and transient responses evoked by modulated light. Electroencephalography and Clinical Neurophysiology 1966; 20: 238–248
  • Regan D. Rapid objective refraction using evoked brain potentials. Investigative Ophthalmology and Visual Science 1973; 12: 669–679
  • Regan D. Speedy assessment of visual acuity in amblyopia by the evoked potential method. Ophthalmologica 1977a; 175: 159–164
  • Regan D. Steady-state evoked potentials. Journal of the Optical Society of America 1977b; 67(11)1475–1489
  • Regan D. Human brain eleclrophysiology: Evoked potentials and evoked magnetic fields in science and medicine. Elsevier Science Publishing Co., Inc, New York 1989
  • Regan D., Milner B. A., Heron J. R. Delayed visual perception and delayed evoked potentials in the spinal form of multiple sclerosis and in retrobulbar neuritis. Brain 1976; 99: 43–66
  • Regan D., Richards W. Independence of evoked potentials and apparent size. Vision Research 1971; 11: 679–684
  • Roy M. S., Lachapelle P., Lepore F. Maturation of the optokinetic nystagmus as a function of the speed of stimulation in full term and preterm infants. Clinical Vision Sciences 1989; 4(4)357–366
  • Schiller P. H. Central connections of the ON and OFF pathways. Nature 1982; 297: 580–583
  • Schiller P. H. The color-opponent and broad-band channels of the primate visual system. Frompigmenls to perception: Advances in understanding visual processes, A. Valberg, B. B. Lee. Plenum Press, New York 1991; 127–132
  • Schiller P. H. The ON and OFF channels of the visual system. Trends in Neuroscience 1992; 15(3)87–92
  • Schiller P. H., Sandel J. H., Maunsell J. H. R. Functions of the ON and OFF channels of the visual system. Nature 1986; 322: 824–825
  • Schor C. M., Levi D. M. Direction selectivity for perceived motion in strabismic and anisometropic amblyopia. Investigative Ophthalmology and Visual Science 1980; 19(9)1094–1104
  • Seiple W. H., Kupersmith M. J., Nelson J. I., Carr R. E. The assessment of evoked potential contrast thresholds using real-time retrieval. Investigative Ophthalmology and Visual Science 1984; 25(6)627–630
  • Shapley R., Perry V. Cat and monkey retinal ganglion cells and their visual functional roles. Trends in Neuroscience 1986; 9(5)229–235
  • Skarf B., Katz L. M., Bachynski B., Eizenman M. Two stage development of fusion and stereopsis in human infants–VEP study. Investigative Ophthalmology and Visual Science (Suppl.) 1992; 33(4)1353
  • Slaughter M. M., Miller R. F. 2-amino-4-phosphoro-butyric acid: A new pharmacological tool for retina research. Science 1981; 211: 182–184
  • Smith D. N. The clinical usefulness of the visual evoked response. Journal of Pediatric Ophthalmology and Strabismus 1984; 21(6)235–236
  • Sokol S. Measurement of infant visual acuity from pattern reversal evoked potentials. Vision Research 1978; 18(1)33–39
  • Sokol S., Jones K. Implicit time of pattern evoked potentials in infants: An index of maturation of spatial vision. Vision Research 1979; 19: 747–755
  • Sokol S., Moskowitz A. Development of ON and OFF brightness pathways in human infants. Investigative Ophthalmology and Visual Science (Suppl) 1990; 34(4)251
  • Sokol S., Dobson V. Pattern reversal visually evoked potentials in infants. Investigative Ophthalmology and Visual Science 1976; 15(1)58–62
  • Sokol S., Peli E., Moskowitz A., Reese P. Pursuit eye movements in strabismic children. Investigative Ophthalmology and Visual Science (Suppl.) 1989; 30(3)305
  • Sokol S., Zemon V., Moskowitz A. Development of lateral interactions in the infant visual system. Visual Neuroscience 1992; 8: 3–8
  • Spekreijse H. Maturation of contrast EPs and development of visual resolution. Archives of Italian Biology 1978; 116: 358–369
  • Spekreijse H., Van der Tweel L. H., Zuidema T. Contrast evoked responses in man. Vision Research 1973; 13: 1577–1601
  • Swanson W. H., Birch E. E. Infant spatiotemporal vision: Dependence of spatial contrast sensitivity on temporal frequency. Vision Research 1990; 30(7)1033–1048
  • Teller D. Y. The forced-choice preferential looking procedure: a psychophysical technique for use with human infants. Infant Behavior and Development 1979; 2: 135–153
  • Teller D. Y., Bornstein M. H. Infant color vision and color perception. Handbook of infant perception. From sensation to perception, P. Salapatek, L. Cohen. Academic Press, Orlando, FL 1987; Vol. 1: 185–236
  • Teller D. Y., Lindsey D. T., Mar C. M., Succop A., Mahal M. R. Infant temporal contrast sensitivity at low temporal frequencies. Vision Research 1992; 32(6)1157–1162
  • Teller D. Y., Movshon J. A. Visual development. Vision Research 1986; 26(9)1483–1506
  • Teller D. Y., Peeples D. R., Sekel M. Discrimination of chromatic from white light by two-month-old human infants. Vision Research 1978; 18: 41–48
  • Tychsen L., Lisberger S. G. Maldevelopment of visual motion processing in humans who had strabismus with onset in infancy. Journal of Neuroscience 1986; 6(9)2495–2508
  • Tyler C. W., Apkarian P., Levi D. M., Nakayama K. Rapid assessment of visual function: An electronic sweep technique forthe pattern. WEP. Investigative Ophthalmology and VisualScience 1979; 18(1)703–713
  • Westall C. A., Schor C. M. Asymmetries of optokinetic nystagmus in amblyopia: The effect of selected retinal stimulation. Vision Research 1985; 25(10)1431–1438
  • Westall C. A., Woodhouse J. M., Brown V. A. OKN asymmetries and binocular function in amblyopia. Ophthalmology and Physiological Optics 1989; 9(3)269–276
  • Zemon V. The VEP: Analysis of functional subsystems in the brain. Proceedings of the 6th Annual Conference of the IEEE Engineering in Medicine and Biology Society. 1984, 426–431
  • Zemon V., Gordon J. Spatial tuning characteristics of functional subsystems in the visual pathways of humans. Investigative Ophthalmology and Visual Science (Suppl.) 1988; 29: 297
  • Zemon V., Gordon J., Eisner W., Shoup H. Physiological measures of visual subsystems in children. Investigative Ophthalmology and Visual Science (Suppl.) 1989; 30(3)314
  • Zemon V., Gordon J., Greenstein V., Holopigian K., Seiple W. Properties of chromatic and luminance channels measured electrophysiologically in humans. Investigative Ophthalmology and Visual Science (Suppl.) 1990; 31(4)263
  • Zemon V., Eisner W., Gordon J., Grose-Fifer J., Shoup H., Tenedios F. Contrast-dependent responses in the human visual system: Childhood through adulthood. International Journal of Neuroscience, (In press)
  • Zemon V., Gordon J., Welch J. Asymmetries in ON and OFF visual pathways of humans revealed using contrast-evoked cortical potentials. Visual Neuroscience 1988; 1: 145–150
  • Zemon V., Ratliff F. Visual evoked potentials: Evidence for lateral interactions. Proceedings of the National Academy of Science 1982; 79: 5723–5726
  • Zemon V., Ratliff F. Intermodulation components of the visual evoked potential: Responses to lateral and superimposed stimuli. Biological Cybernetics 1984; 50: 401–408
  • Zubcov A. A., Fendick M. G., Gottlob I., Wizov S. S., Reinecke R. D. Visual-evoked cortical potentials in dissociated vertical deviation. American Journal of Ophthalmology 1991; 112: 714–722

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