Arai K, Das S, Keller EL, Aiyoshi E. (1999). A distributed model of the saccade system: simulations of temporally perturbed saccades using position and velocity feedback. Neural networks : the official journal of the International Neural Network Society. 12 [PubMed]

See more from authors: Arai K · Das S · Keller EL · Aiyoshi E

References and models cited by this paper

Anderson RW, Keller EL, Gandhi NJ, Das S. (1998). Two-dimensional saccade-related population activity in superior colliculus in monkey. Journal of neurophysiology. 80 [PubMed]

Cannon SC, Robinson DA. (1985). An improved neural-network model for the neural integrator of the oculomotor system: more realistic neuron behavior. Biological cybernetics. 53 [PubMed]

Das S, Gandhi NJ, Keller EL. (1995). Open-loop simulations of the primate saccadic system using burst cell discharge from the superior colliculus. Biological cybernetics. 73 [PubMed]

Das S, Keller EL, Arai K. (1996). A distributed model of the saccadic system: the effects of internal noise Neurocomputing. 11

Dean P. (1995). Modelling the role of the cerebellar fastigial nuclei in producing accurate saccades: the importance of burst timing. Neuroscience. 68 [PubMed]

Edelman JA, Keller EL. (1996). Activity of visuomotor burst neurons in the superior colliculus accompanying express saccades. Journal of neurophysiology. 76 [PubMed]

Fuchs AF, King WM. (1977). Neuronal activity in mesencephalon related to vertical eye movements Control of gaze by brainstem neurons.

Glimcher PW, Sparks DL. (1993). Effects of low-frequency stimulation of the superior colliculus on spontaneous and visually guided saccades. Journal of neurophysiology. 69 [PubMed]

Goldberg DE. (1989). Genetic Algorithms in Search, Optimization and Machine Learning.

Goldberg ME, Olson CR, Fitzgibbon EJ, Musil SY. (1993). The role of the cerebellum in the control of saccadic eye movements The role of the basal ganglia and cerebellum in voluntary movement.

Grossberg S, Roberts K, Aguilar M, Bullock D. (1997). A neural model of multimodal adaptive saccadic eye movement control by superior colliculus. The Journal of neuroscience : the official journal of the Society for Neuroscience. 17 [PubMed]

Hartwich-Young R, Nelson JS, Sparks DL. (1990). The perihypoglossal projection to the superior colliculus in the rhesus monkey. Visual neuroscience. 4 [PubMed]

Holland JH. (1975). Adapatation in natural and artificial systems.

Jürgens R, Becker W, Kornhuber HH. (1981). 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. Biological cybernetics. 39 [PubMed]

Kaneko CR. (1997). Eye movement deficits after ibotenic acid lesions of the nucleus prepositus hypoglossi in monkeys. I. Saccades and fixation. Journal of neurophysiology. 78 [PubMed]

Keller EL. (1977). Control of saccadic eye movements by midline brainstem neurons Control of gaze by brain stem neurons.

Keller EL. (1991). The brainstem Vision and visual dysfunction eye movements.

Keller EL, Arai K, Edelman JA. (1994). Two-dimensional neural network model of the primate saccadic system Neural Networ. 7

Keller EL, Edelman JA. (1994). Use of interrupted saccade paradigm to study spatial and temporal dynamics of saccadic burst cells in superior colliculus in monkey. Journal of neurophysiology. 72 [PubMed]

Keller EL, Gandhi NJ, Sekaran SV. (1999). Activity in deep collicular neurons during interrupted saccades Exp Brain Res.

Keller EL, Gandhi NJ, Shieh JM. (2006). Endpoint accuracy in saccades interrupted by stimulation in the omnipause region in monkey. Vis Neurosci. 13

Krommenhoek KP, van Opstal AJ, Gielen CC, van Gisbergen JA. (1993). Remapping of neural activity in the motor colliculus: a neural network study. Vision research. 33 [PubMed]

Lee PH, Helms MC, Augustine GJ, Hall WC. (1997). Role of intrinsic synaptic circuitry in collicular sensorimotor integration. Proceedings of the National Academy of Sciences of the United States of America. 94 [PubMed]

Lefevre P, Galiana HL. (1992). Dynamic feedback to the superior colliculus in a neural network model of the gaze control system Neural Networks. 5

Lefèvre P, Quaia C, Optican LM. (1998). Distributed model of control of saccades by superior colliculus and cerebellum. Neural networks : the official journal of the International Neural Network Society. 11 [PubMed]

Marr D. (1982). Vision: A Computational Investigation into the Human Representation and Processing of Visual Information.

Massone LL. (1994). A neural-network system for control of eye movements: basic mechanisms. Biological cybernetics. 71 [PubMed]

McFarland JL, Fuchs AF. (1992). Discharge patterns in nucleus prepositus hypoglossi and adjacent medial vestibular nucleus during horizontal eye movement in behaving macaques. Journal of neurophysiology. 68 [PubMed]

McIlwain JT. (1982). Lateral spread of neural excitation during microstimulation in intermediate gray layer of cat's superior colliculus. Journal of neurophysiology. 47 [PubMed]

Meredith MA, Ramoa AS. (1998). Intrinsic circuitry of the superior colliculus: pharmacophysiological identification of horizontally oriented inhibitory interneurons. Journal of neurophysiology. 79 [PubMed]

Moschovakis AK, Highstein SM. (1994). The anatomy and physiology of primate neurons that control rapid eye movements. Annual review of neuroscience. 17 [PubMed]

Moschovakis AK et al. (1998). An anatomical substrate for the spatiotemporal transformation. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Munoz DP, Dorris MC, Istvan PJ. (1994). Functional identification of neurons in the monkey superior colliculus that project to the paramedian pontine reticular formation Society For Neuroscience. 20

Munoz DP, Guitton D, Pélisson D. (1991). Control of orienting gaze shifts by the tectoreticulospinal system in the head-free cat. III. Spatiotemporal characteristics of phasic motor discharges. Journal of neurophysiology. 66 [PubMed]

Munoz DP, Istvan PJ. (1998). Lateral inhibitory interactions in the intermediate layers of the monkey superior colliculus. Journal of neurophysiology. 79 [PubMed]

Munoz DP, Waitzman DM, Wurtz RH. (1996). Activity of neurons in monkey superior colliculus during interrupted saccades. Journal of neurophysiology. 75 [PubMed]

Munoz DP, Wurtz RH. (1995). Saccade-related activity in monkey superior colliculus. II. Spread of activity during saccades. Journal of neurophysiology. 73 [PubMed]

Optican LM. (1994). Control of saccade trajectory by the colliculus Contemporary ocularmotor and vestibular research: a tribute to David A. Robinson.

Pearlmutter BA. (1995). Gradient calculation for dynamic recurrent neural networks: A survey IEEE Trans Neural Networks. 6

Pettit DL, Helms MC, Lee P, Augustine GJ, Hall WC. (1999). Local excitatory circuits in the intermediate gray layer of the superior colliculus. Journal of neurophysiology. 81 [PubMed]

Renders J, Flasse S. (1966). Hybrid methods using genetic algorithms for global optimization IEEE Trans Sys Man Cybern. B26

Robinson DA. (1975). Oculomotor control signals Basic Mechanisms of Ocular Motility and Their Clinical Implications.

Scudder CA. (1988). A new local feedback model of the saccadic burst generator. Journal of neurophysiology. 59 [PubMed]

Sparks DL, Hartwich-Young R. (1989). The deep layers of the superior colliculus. Rev Oculomot Res. 3

Van Gisbergen JA, Robinson DA, Gielen S. (1981). A quantitative analysis of generation of saccadic eye movements by burst neurons. Journal of neurophysiology. 45 [PubMed]

Waitzman DM, Ma TP, Optican LM, Wurtz RH. (1991). Superior colliculus neurons mediate the dynamic characteristics of saccades. Journal of neurophysiology. 66 [PubMed]

Zee DS. (1982). Ocular motor control: the cerebellum Neuro-ophthalmology.

Zee DS, Optican LM, Cook JD, Robinson DA, Engel WK. (1976). Slow saccades in spinocerebellar degeneration. Archives of neurology. 33 [PubMed]

van Opstal AJ, Kappen H. (1993). A two-dimensional ensemble coding model for spatial-temporal transformation of saccades in monkey superior colliculus Network. 4

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Miura K, Optican LM. (2006). Membrane channel properties of premotor excitatory burst neurons may underlie saccade slowing after lesions of omnipause neurons. Journal of computational neuroscience. 20 [PubMed]

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