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A foveal target increases catch-up saccade frequency during smooth pursuit. Journal Of Neurophysiology, jn–00774.
. (2015). Flexible interpretation of a decision rule by supplementary eye field neurons. Journal Of Neurophysiology, 106, 2992–3000.
. (2011). Cerebellar uvula involvement in visual motion processing and smooth pursuit control in monkey. Annals Of The New York Academy Of Sciences, 656, 775–782.
. (1992). Single-neuron activity in the dorsomedial frontal cortex during smooth-pursuit eye movements to predictable target motion. Visual Neuroscience, 14, 853–865.
. (1997). . (2007).
. (2011).
Adaptation of saccades and fixation to bilateral foveal lesions in adult monkey. Vision Research, 32, 365–373.
. (1992). Smooth pursuit eye movements: Recent advances. The Visual Neurosciences (Chalupa Lm, Werner Js, Eds), 333–334.
. (2003). . (1998).
Characteristics of nystagmus evoked by electrical stimulation of the uvular/nodular lobules of the cerebellum in monkey. Journal Of Vestibular Research: Equilibrium & Orientation, 2, 235–245.
. (1991). . (2005).
Evidence of a timing mechanism for predictive smooth pursuit in frontal cortex. In Contemporary Oculomotor and Vestibular Research: A Tribute to David A Robinson.
. (1994). Single neuron activity in the dorsomedial frontal cortex during smooth pursuit eye movements. Experimental Brain Research, 104, 357–361.
. (1995). Choosing a foveal goal recruits the saccadic system during smooth pursuit. Journal Of Neurophysiology , 120(2), 489-496. http://doi.org/ 10.1152/jn.00418.2017
. (2018). An oculomotor decision process revealed by functional magnetic resonance imaging. The Journal Of Neuroscience, 26, 13515–13522.
. (2006). Recovery of visual responses in foveal V1 neurons following bilateral foveal lesions in adult monkey. Experimental Brain Research, 83, 670–674.
. (1991). The function of the cerebellar uvula in monkey during optokinetic and pursuit eye movements: single-unit responses and lesion effects. Experimental Brain Research, 110, 1–14.
. (1996).