Positional uncertainty in peripheral and amblyopic vision
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[1] B. Bourdon,et al. La perception visuelle de l'espace , 1902 .
[2] L. A. Copps. Vision in Anisometropia , 1944 .
[3] E. Ludvigh. Direction sense of the eye. , 1953, American journal of ophthalmology.
[4] F. W. Weymouth,et al. Unequal corrected visual acuity as related to anisometropia. , 1955, A.M.A. archives of ophthalmology.
[5] D. Whitteridge,et al. The representation of the visual field on the cerebral cortex in monkeys , 1961, The Journal of physiology.
[6] K. Oatley,et al. Vernier acuity as affected by target length and separation , 1972 .
[7] C. B. Rubinstein,et al. A model of threshold vision incorporating inhomogeneity of the visual field , 1977, Vision Research.
[8] D M Levi,et al. Spatio-temporal interactions in anisometropic and strabismic amblyopia. , 1977, Investigative ophthalmology & visual science.
[9] S. McKee,et al. Spatial configurations for visual hyperacuity , 1977, Vision Research.
[10] D. P. Andrews,et al. Acuity for spatial separation as a function of stimulus size , 1978, Vision Research.
[11] M. A. Bouman,et al. Perimetry of contrast detection thresholds of moving spatial sine wave patterns. I. The near peripheral visual field (eccentricity 0 degrees-8 degrees). , 1978, Journal of the Optical Society of America.
[12] C. Blakemore,et al. Physiological basis of anisometropic amblyopia. , 1978, Science.
[13] J. Rovamo,et al. Cortical magnification factor predicts the photopic contrast sensitivity of peripheral vision , 1978, Nature.
[14] J J Koenderink,et al. Perimetry of contrast detection thresholds of moving spatial sine wave patterns. IV. The influence of the mean retinal illuminance. , 1978, Journal of the Optical Society of America.
[15] H. B. Barlow,et al. Reconstructing the visual image in space and time , 1979, Nature.
[16] D. Marr,et al. An Information Processing Approach to Understanding the Visual Cortex , 1980 .
[17] F. Campbell,et al. Differences in the neural basis of human amblyopias: The effect of mean luminance , 1980, Vision Research.
[18] W. Charman,et al. Off-axis image quality in the human eye , 1981, Vision Research.
[19] E. Switkes,et al. Deoxyglucose analysis of retinotopic organization in primate striate cortex. , 1982, Science.
[20] D M Levi,et al. Differences in vernier discrimination for grating between strabismic and anisometropic amblyopes. , 1982, Investigative ophthalmology & visual science.
[21] Robert F. Hess,et al. The discriminability of spatial phase relationships in amblyopia , 1982, Vision Research.
[22] G. Westheimer. The spatial grain of the perifoveal visual field , 1982, Vision Research.
[23] D M Levi,et al. Spatial processing of complex stimuli in the amblyopic visual system. , 1982, Investigative ophthalmology & visual science.
[24] Allan W. Snyder. Hyperacuity and interpolation by the visual pathways , 1982, Vision Research.
[25] Dennis M. Levi,et al. Hyperacuity and amblyopia , 1982, Nature.
[26] Dennis M. Levi,et al. Spatial localization in normal and amblyopic vision , 1983, Vision Research.
[27] R. J. Watt,et al. The use of different cues in vernier acuity , 1983, Vision Research.
[28] R. Hess,et al. Contrast-coding in amblyopia. I. Differences in the neural basis of human amblyopia , 1983, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[29] John H. R. Maunsell,et al. The visual field representation in striate cortex of the macaque monkey: Asymmetries, anisotropies, and individual variability , 1984, Vision Research.
[30] A. Z. Meiri,et al. The effects of exposure duration and luminance on the 3-dot hyperacuity task , 1984, Vision Research.
[31] D. Badcock. How do we discriminate relative spatial phase? , 1984, Vision Research.
[32] F. Campbell,et al. Vernier acuity: interactions between length effects and gaps when orientation cues are eliminated. , 1985, Spatial vision.
[33] Dennis M. Levi,et al. Vernier acuity, crowding and amblyopia , 1985, Vision Research.
[34] S. Klein,et al. Hyperacuity thresholds of 1 sec: theoretical predictions and empirical validation. , 1985, Journal of the Optical Society of America. A, Optics and image science.
[35] S. Klein,et al. Vernier acuity, crowding and cortical magnification , 1985, Vision Research.
[36] Hugh R. Wilson,et al. Eccentricity dependence of contrast matching and oblique masking , 1985, Vision Research.
[37] R. W. Klopfenstein,et al. Spatial-Frequency Model for Hyperacuity , 1985 .
[38] Arthur Bradley,et al. Is reduced vernier acuity in amblyopia due to position, contrast or fixation deficits? , 1985, Vision Research.
[39] A. Cowey,et al. The ganglion cell and cone distributions in the monkey's retina: Implications for central magnification factors , 1985, Vision Research.
[40] R. Hess,et al. Differences in the neural basis of human amblyopia: The distribution of the anomaly across the visual field , 1985, Vision Research.
[41] R. Watt,et al. A theory of the primitive spatial code in human vision , 1985, Vision Research.
[42] G. Blasdel,et al. Voltage-sensitive dyes reveal a modular organization in monkey striate cortex , 1986, Nature.
[43] Hugh R. Wilson,et al. Responses of spatial mechanisms can explain hyperacuity , 1986, Vision Research.
[44] W S Geisler,et al. Sampling-theory analysis of spatial vision. , 1986, Journal of the Optical Society of America. A, Optics and image science.
[45] S. Klein,et al. Sampling in spatial vision , 1986, Nature.
[46] H. Bourgeois,et al. [Contrast sensitivity]. , 1987, L'Annee therapeutique et clinique en ophtalmologie.
[47] R. J. Watt,et al. Spatial information and uncertainty in anisometropic amblyopia , 1987, Vision Research.