Kanari K, Kaneko H
J Eye Mov Res. 2021; 12(1).
PMID: 33828722
PMC: 7905322.
DOI: 10.16910/jemr.12.1.2.
Kanari K, Sakamoto K, Kaneko H
PLoS One. 2017; 12(4):e0175453.
PMID: 28388668
PMC: 5384781.
DOI: 10.1371/journal.pone.0175453.
Han S, Han E, Hyon J, Seo J, Lee J, Hwang J
Graefes Arch Clin Exp Ophthalmol. 2011; 249(9):1379-85.
PMID: 21603927
DOI: 10.1007/s00417-011-1705-x.
Watamaniuk S, Heinen S
Vision Res. 2007; 47(4):466-73.
PMID: 17239421
PMC: 2564621.
DOI: 10.1016/j.visres.2006.09.030.
Garbutt S, Harwood M, Harris C
Br J Ophthalmol. 2001; 85(12):1477-83.
PMID: 11734524
PMC: 1723810.
DOI: 10.1136/bjo.85.12.1477.
Optokinetic nystagmus in patients with central scotomas in age related macular degeneration.
Valmaggia C, Charlier J, Gottlob I
Br J Ophthalmol. 2001; 85(2):169-72.
PMID: 11159480
PMC: 1723863.
DOI: 10.1136/bjo.85.2.169.
Monocular optokinetic nystagmus in humans with age-related maculopathy.
Abadi R, Pantazidou M
Br J Ophthalmol. 1997; 81(2):123-9.
PMID: 9059245
PMC: 1722117.
DOI: 10.1136/bjo.81.2.123.
Visual sensory substitution in vestibular compensation: neuronal substrates in the alert cat.
Zennou-Azogui Y, Xerri C, Harlay F
Exp Brain Res. 1994; 98(3):457-73.
PMID: 8056066
DOI: 10.1007/BF00233983.
Human smooth and saccadic eye movements during voluntary pursuit of different target motions on different backgrounds.
COLLEWIJN H, Tamminga E
J Physiol. 1984; 351:217-50.
PMID: 6747865
PMC: 1193114.
DOI: 10.1113/jphysiol.1984.sp015242.
The horizontal optokinetic nystagmus in the cat.
Maioli C, Precht W
Exp Brain Res. 1984; 55(3):494-506.
PMID: 6332029
DOI: 10.1007/BF00235280.
Directional preponderance in human optokinetic nystagmus.
Ohmi M, Howard I, Eveleigh B
Exp Brain Res. 1986; 63(2):387-94.
PMID: 3758255
DOI: 10.1007/BF00236857.
Human fixation and pursuit in normal and open-loop conditions: effects of central and peripheral retinal targets.
COLLEWIJN H, Tamminga E
J Physiol. 1986; 379:109-29.
PMID: 3559990
PMC: 1182887.
DOI: 10.1113/jphysiol.1986.sp016243.
Directional asymmetries of human optokinetic nystagmus.
van den Berg A, COLLEWIJN H
Exp Brain Res. 1988; 70(3):597-604.
PMID: 3384058
DOI: 10.1007/BF00247608.
Human optokinetic nystagmus: competition between stationary and moving displays.
Murasugi C, Howard I, Ohmi M
Percept Psychophys. 1989; 45(2):137-44.
PMID: 2928075
DOI: 10.3758/bf03208048.
Up-down asymmetry in human vertical optokinetic nystagmus and afternystagmus: contributions of the central and peripheral retinae.
Murasugi C, Howard I
Exp Brain Res. 1989; 77(1):183-92.
PMID: 2792261
DOI: 10.1007/BF00250580.
Optokinetic nystagmus in homonymous hemianopia due to a strictly occipital lesion.
Kolmel H, Nabel H
Eur Arch Psychiatry Neurol Sci. 1989; 238(4):199-202.
PMID: 2759153
DOI: 10.1007/BF00381465.
Horizontal optokinetic responses under stroboscopic illumination in cat, monkey and man.
Flandrin J, Courjon J, Magnin M, Arzi M
Exp Brain Res. 1990; 81(1):59-69.
PMID: 2394231
DOI: 10.1007/BF00230101.
Relationship of induced motion and apparent straight-ahead shifts to optokinetic stimulus velocity.
Post R, Lott L
Percept Psychophys. 1990; 48(4):401-6.
PMID: 2243765
DOI: 10.3758/bf03206695.
Suppression of optokinesis by a stabilized target: effects of instruction and stimulus frequency.
Pola J, Wyatt H, Lustgarten M
Percept Psychophys. 1992; 52(2):186-200.
PMID: 1508626
DOI: 10.3758/bf03206772.
Interaction of active and passive slow eye movement systems.
Worfolk R, Barnes G
Exp Brain Res. 1992; 90(3):589-98.
PMID: 1426115
DOI: 10.1007/BF00230943.