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Original Article

Interaction Of Optokinetic And Vestibular Stimuli In Motion Perception

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Pages 24-31 | Received 28 Jul 1972, Published online: 08 Jul 2009

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Luc Proteau Guillaume Masson. (1997) Visual Perception Modifies Goal-directed Movement Control: Supporting Evidence from a Visual Perturbation Paradigm. The Quarterly Journal of Experimental Psychology Section A 50:4, pages 726-741.
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Makoto Igarashi, Masanori Ishii, Sayong Chae & Tetsuo Himi. (1989) Second-phase Optokinetic After-nystagmus and Vestibular Compensation. Acta Oto-Laryngologica 108:sup468, pages 145-148.
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Makoto Igarashi, Hidemitsu Isago, Toshiaki O-Uchi, Walter B. Kulecz, Jerry L. Homick & Millard F. Reschke. (1983) Vestibular-Visual Conflict Sickness in the Squirrel Monkey. Acta Oto-Laryngologica 95:1-4, pages 193-198.
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M. Igarashi, M. Takahashi & J. L. Homick. (1978) Optokinetic Afternystagmus And Postrotatory Nystagmus In Squirrel Monkeys. Acta Oto-Laryngologica 85:1-6, pages 387-396.
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M. Takahashi, M. Igarashi & M. F. Reschke. (1978) Directional Conflict Between Vestibular And Visual Inputs In The Squirrel Monkey. Acta Oto-Laryngologica 85:1-6, pages 253-261.
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M. Takahashi, M. Igarashi & M. F. Reschke. (1978) Directional Conflict Between Vestibular and Visual Inputs in the Squirrel Monkey. Acta Oto-Laryngologica 85:3-4, pages 253-261.
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L. R. Young & V. S. Henn. (1974) Selective Habituation of Vestibular Nystagmus by Visual Stimulation. Acta Oto-Laryngologica 77:1-6, pages 159-166.
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Percival D. McCormack & Charles E. Swenberg. 2003. digital Encyclopedia of Applied Physics. digital Encyclopedia of Applied Physics.
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Fred W Mast, Alain Berthoz & Stephen M Kosslyn. (2016) Mental Imagery of Visual Motion Modifies the Perception of Roll-Vection Stimulation. Perception 30:8, pages 945-957.
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Eric L. Groen, Mario S. V. Valenti Clari & Ruud J. A. W. Hosman. (2001) Evaluation of Perceived Motion During a Simulated Takeoff Run. Journal of Aircraft 38:4, pages 600-606.
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Stephen Palmisano, Barbara J Gillam & Shane G Blackburn. (2016) Global-Perspective Jitter Improves Vection in Central Vision. Perception 29:1, pages 57-67.
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Timothy W. Deyer & James A. Ashton-Miller. (1999) Unipedal balance in healthy adults: Effect of visual environments yielding decreased lateral velocity feedback. Archives of Physical Medicine and Rehabilitation 80:9, pages 1072-1077.
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Guillaume Masson, Luc Proteau & Daniel R. Mestre. (1995) Effects of stationary and moving textured backgrounds on the visuo-oculo-manual tracking in humans. Vision Research 35:6, pages 837-852.
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Theodore R. Carpenter-Smith, Robert G. Futamura & Donald E. Parker. (1995) Inertial acceleration as a measure of linear vection: An alternative to magnitude estimation. Perception & Psychophysics 57:1, pages 35-42.
Crossref
William H. WarrenJr.Jr.. 1995. Perception of Space and Motion. Perception of Space and Motion 263 325 .
VICENTE HONRUBIA, R. KHALILI & R. W. BALOH. (1992) Optokinetic and Vestibular Interactions with Smooth Pursuit: Psychophysical Responses. Annals of the New York Academy of Sciences 656:1 Sensing and C, pages 739-746.
Crossref
A. Straube, W. Paulus & T. Probst. (1987) Influence of head or trunk oscillations on visually induced self-motion perception in humans. Neuroscience Letters 76:2, pages 245-248.
Crossref
Marie-Françoise Tardy-Gervet, Jean-Claude Gilhodes & Jean-Pierre Roll. (1986) Interactions between visual and muscular information in illusions of limb movement. Behavioural Brain Research 20:2, pages 161-174.
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Clifton Schor & Carol Westall. (1986) Rapid adaptation of the vestibulo-ocular reflex and induced self-motion perception. Perception & Psychophysics 40:1, pages 1-8.
Crossref
Paul A. Dizio & James R. Lackner. (1986) Perceived orientation, motion, and configuration of the body during viewing of an off-vertical, rotating surface. Perception & Psychophysics 39:1, pages 39-46.
Crossref
Th. Probst, A. Straube & W. Bles. (1985) Differential effects of ambivalent visual-vestibular-somatosensory stimulation on the perception of self-motion. Behavioural Brain Research 16:1, pages 71-79.
Crossref
Laurence R. Young. 2011. Comprehensive Physiology. Comprehensive Physiology 1023 1066 .
Marie Françoise Tardy-Gervet, Jean Claude Gilhodes & Jean Pierre Roll. (1984) Perceptual and motor effects elicited by a moving visual stimulus below the forearm: An example of segmentary vection. Behavioural Brain Research 11:2, pages 171-184.
Crossref
J. Hulk & F. Rempt. (1984) Optokinetic sensations evoked by local stimulation of the peripheral retina. Documenta Ophthalmologica 56:3, pages 237-242.
Crossref
A. Buizza & R. Schmid. (1982) Visual-vestibular interaction in the control of eye movement: Mathematical modelling and computer simulation. Biological Cybernetics 43:3, pages 209-223.
Crossref
Peter C. CompesPeter C. Compes. 1982. Vor-Untersuchung von Straßenverkehrsunfällen hinsichtlich des durch Coriolis-Beschleunigung verursachten menschlichen Fehlverhaltens. Vor-Untersuchung von Straßenverkehrsunfällen hinsichtlich des durch Coriolis-Beschleunigung verursachten menschlichen Fehlverhaltens 81 85 .
Kazimierz Karbowski. 1981. Der Schwindel aus interdisziplinärer Sicht. Der Schwindel aus interdisziplinärer Sicht 1 19 .
U. Büttner, U. W. Buettner & V. Henn. 1981. The Vestibular System: Function and Morphology. The Vestibular System: Function and Morphology 478 490 .
Laurence R. Young. 1981. The Vestibular System: Function and Morphology. The Vestibular System: Function and Morphology 393 424 .
B. Waespe, W. Waespe & V. Henn. (1980) Subjective velocity estimation during conflicting visual-vestibular stimulation. Archiv f�r Psychiatrie und Nervenkrankheiten 228:2, pages 109-116.
Crossref
RICHARD BALLIET & KEN NAKAYAMA. (1978) Egocentric orientation is influenced by trained voluntary cyclorotary eye movements. Nature 275:5677, pages 214-216.
Crossref
U. Büttner & U.W. Buettner. (1978) Parietal cortex (2v) neuronal activity in the alert monkey during natural vestibular and optokinetic stimulation. Brain Research 153:2, pages 392-397.
Crossref
S. C. P. Wong & B. J. Frost. (1978) Subjective motion and acceleration induced by the movement of the observer’s entire visual field. Perception & Psychophysics 24:2, pages 115-120.
Crossref
S. M. Anstis, J. Atkinson, C. Blakemore, O. Braddick, T. Brandt, F. W. Campbell, S. Coren, J. Dichgans, P. C. Dodwell, P. D. Eimas, J. M. Foley, R. Fox, L. Ganz, M. Garrett, E. J. Gibson, J. S. Girgus, M. M. Haith, Y. Hatwell, E. R. Hilgard, D. Ingle, G. Johansson, B. Julesz, M. Konishi, J. R. Lackner, E. Levinson, A. M. Liberman, L. Maffei, T. Oyama, A. Pantle, E. Pöppel, R. Sekuler, C. F. Stromeyer, M. Studdert-Kennedy, H.-L. Teuber & R. K. YinJames R. Lackner. 1978. Perception. Perception 805 845 .
S. M. Anstis, J. Atkinson, C. Blakemore, O. Braddick, T. Brandt, F. W. Campbell, S. Coren, J. Dichgans, P. C. Dodwell, P. D. Eimas, J. M. Foley, R. Fox, L. Ganz, M. Garrett, E. J. Gibson, J. S. Girgus, M. M. Haith, Y. Hatwell, E. R. Hilgard, D. Ingle, G. Johansson, B. Julesz, M. Konishi, J. R. Lackner, E. Levinson, A. M. Liberman, L. Maffei, T. Oyama, A. Pantle, E. Pöppel, R. Sekuler, C. F. Stromeyer, M. Studdert-Kennedy, H.-L. Teuber & R. K. YinJohannes Dichgans & Thomas Brandt. 1978. Perception. Perception 755 804 .
Edward M. Ornitz. 1978. Autism. Autism 117 139 .
Bernard Pavard & Alain Berthoz. (2016) Linear Acceleration Modifies the Perceived Velocity of a Moving Visual Scene. Perception 6:5, pages 529-540.
Crossref
Makoto Igarashi, Masahiro Takahashi & Jerry L. Homick. (1977) Optokinetic nystagmus and vestibular stimulation in squirrel monkey model. Archives of Oto-Rhino-Laryngology 218:1-2, pages 115-121.
Crossref
David S. Zee, Robert D. Yee & David A. Robinson. (1976) Optokinetic responses in labyrinthine-defective human beings. Brain Research 113:2, pages 423-428.
Crossref
U. Büttner & V. Henn. (1976) Thalamic unit activity in the alert monkey during natural vestibular stimulation. Brain Research 103:1, pages 127-132.
Crossref
Richard Held, Johannes Dichgans & Joseph Bauer. (1975) Characteristics of moving visual scenes influencing spatial orientation. Vision Research 15:3, pages 357-IN1.
Crossref
V. Henn, L.R. Young & C. Finley. (1974) Vestibular nucleus units in alert monkeys are also influenced by moving visual fields. Brain Research 71:1, pages 144-149.
Crossref
L. YOUNGC. OMANR. CURRYJ. DICHGANS. (1973) A descriptive model of multi-sensor human spatial orientation with applications to visually induced sensations of motion. A descriptive model of multi-sensor human spatial orientation with applications to visually induced sensations of motion.

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