Literature DB >> 3801529

A model of the smooth pursuit eye movement system.

D A Robinson, J L Gordon, S E Gordon.   

Abstract

Human, horizontal, smooth-pursuit eye movements were recorded by the search coil method in response to Rashbass step-ramp stimuli of 5 to 30 deg/s. Eye velocity records were analyzed by measuring features such as the time, velocity and acceleration of the point of peak acceleration, the time and velocity of the peaks and troughs of ringing and steady-state velocity. These values were averaged and mean responses reconstructed. Three normal subjects were studied and their responses averaged. All showed a peak acceleration-velocity saturation. All had ringing frequencies near 3.8 Hz and the mean steady-state gain was 0.95. It is argued that a single, linear forward path with any transfer function G(s) and a 100 ms delay (latency) cannot simultaneously simulate the initial rise of acceleration and ring at 3.8 Hz based on a Bode analysis. Also such a simple negative feedback model cannot have a steady-state gain greater than 1.0; a situation that occurs frequently experimentally. L.R. Young's model, which employs internal positive feedback to eliminate the built-in unity negative feedback, was felt necessary to resolve this problem and a modification of that model is proposed which simulates the data base. Acceleration saturation is achieved by borrowing the idea of the local feedback model for saccades so that one nonlinearity can account for the acceleration-velocity saturation: the main sequence for pursuit. Motor plasticity or motor learning, recently demonstrated for pursuit, is also incorporated and simulated. It was noticed that the offset of pursuit did not show the ringing seen in the onset so this was quantified in one subject. Offset velocity could be characterized by a single exponential with a time constant of about 90 ms. This observation suggests that fixation is not pursuit at zero velocity and that the pursuit system is turned on when needed and off during fixation.

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Year:  1986        PMID: 3801529     DOI: 10.1007/bf00363977

Source DB:  PubMed          Journal:  Biol Cybern        ISSN: 0340-1200            Impact factor:   2.086


  31 in total

1.  A hypothetical explanation of saccadic oscillations.

Authors:  D S Zee; D A Robinson
Journal:  Ann Neurol       Date:  1979-05       Impact factor: 10.422

2.  Velocity characteristics of normal human saccades.

Authors:  D Boghen; B T Troost; R B Daroff; L F Dell'Osso; J E Birkett
Journal:  Invest Ophthalmol       Date:  1974-08

3.  Saccades are spatially, not retinocentrically, coded.

Authors:  L E Mays; D L Sparks
Journal:  Science       Date:  1980-06-06       Impact factor: 47.728

4.  The upper limit of human smooth pursuit velocity.

Authors:  C H Meyer; A G Lasker; D A Robinson
Journal:  Vision Res       Date:  1985       Impact factor: 1.886

5.  Eye movements evoked by cerebellar stimulation in the alert monkey.

Authors:  S Ron; D A Robinson
Journal:  J Neurophysiol       Date:  1973-11       Impact factor: 2.714

6.  Natural and drug-induced variations of velocity and duration of human saccadic eye movements: evidence for a control of the neural pulse generator by local feedback.

Authors:  R Jürgens; W Becker; H H Kornhuber
Journal:  Biol Cybern       Date:  1981       Impact factor: 2.086

7.  Relationship between eye acceleration and retinal image velocity during foveal smooth pursuit in man and monkey.

Authors:  S G Lisberger; C Evinger; G W Johanson; A F Fuchs
Journal:  J Neurophysiol       Date:  1981-08       Impact factor: 2.714

8.  Firing patterns of abducens neurons of alert monkeys in relationship to horizontal eye movement.

Authors:  A F Fuchs; E S Luschei
Journal:  J Neurophysiol       Date:  1970-05       Impact factor: 2.714

9.  Adaptive gain control of vestibuloocular reflex by the cerebellum.

Authors:  D A Robinson
Journal:  J Neurophysiol       Date:  1976-09       Impact factor: 2.714

10.  Dependence of visual tracking capability upon stimulus predictability.

Authors:  J A Michael; G M Jones
Journal:  Vision Res       Date:  1966-12       Impact factor: 1.886

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  114 in total

1.  Common 3 and 10 Hz oscillations modulate human eye and finger movements while they simultaneously track a visual target.

Authors:  J H McAuley; S F Farmer; J C Rothwell; C D Marsden
Journal:  J Physiol       Date:  1999-03-15       Impact factor: 5.182

2.  Visual motion analysis for pursuit eye movements in area MT of macaque monkeys.

Authors:  S G Lisberger; J A Movshon
Journal:  J Neurosci       Date:  1999-03-15       Impact factor: 6.167

3.  Anticipatory control of hand and eye movements in humans during oculo-manual tracking.

Authors:  G R Barnes; J F Marsden
Journal:  J Physiol       Date:  2002-02-15       Impact factor: 5.182

4.  Smooth pursuit tracking of an abrupt change in target direction: vector superposition of discrete responses.

Authors:  John F Soechting; Leigh A Mrotek; Martha Flanders
Journal:  Exp Brain Res       Date:  2004-08-18       Impact factor: 1.972

5.  Pursuit of intermittently illuminated moving targets in the human.

Authors:  G R Barnes; P T Asselman
Journal:  J Physiol       Date:  1992-01       Impact factor: 5.182

6.  Self-monitoring of gaze in high functioning autism.

Authors:  Ouriel Grynszpan; Jacqueline Nadel; Jean-Claude Martin; Jérôme Simonin; Pauline Bailleul; Yun Wang; Daniel Gepner; Florence Le Barillier; Jacques Constant
Journal:  J Autism Dev Disord       Date:  2012-08

7.  Influence of previous target motion on anticipatory pursuit deceleration.

Authors:  C de Hemptinne; G R Barnes; M Missal
Journal:  Exp Brain Res       Date:  2010-10-21       Impact factor: 1.972

8.  Specific vermal complex spike responses build up during the course of smooth-pursuit adaptation, paralleling the decrease of performance error.

Authors:  Suryadeep Dash; Nicolas Catz; Peter Wilhelm Dicke; Peter Thier
Journal:  Exp Brain Res       Date:  2010-06-24       Impact factor: 1.972

9.  A foveal target increases catch-up saccade frequency during smooth pursuit.

Authors:  Stephen J Heinen; Elena Potapchuk; Scott N J Watamaniuk
Journal:  J Neurophysiol       Date:  2015-12-02       Impact factor: 2.714

10.  Predictive smooth pursuit of complex two-dimensional trajectories in monkey: component interactions.

Authors:  R E Kettner; H C Leung; B W Peterson
Journal:  Exp Brain Res       Date:  1996-03       Impact factor: 1.972

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