journal article Jan 01, 1998

The representation of visual salience in monkey parietal cortex

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References
22
[1]
Andersen, R. & Gnadt, J. W. in The Neurobiology of Saccadic Eye Movements, Reviews of Oculomotor Research Vol. III(eds Wurtz, R. H. & Goldberg, M. E.) 315–336 (Elsevier, Amsterdam, 1989).
[2]
Andersen, R. A., Brotchie, P. R. & Mazzoni, P. Evidence for the lateral intraparietal areas as the parietal eye field. Curr. Opin. Neurobiol. 2, 840–846 (1992). 10.1016/0959-4388(92)90143-9
[3]
The Updating of the Representation of Visual Space in Parietal Cortex by Intended Eye Movements

Jean-René Duhamel, Carol L. Colby, Michael E. Goldberg

Science 1992 10.1126/science.1553535
[4]
Yantis, S. Attentional Capture in Vision (American Psychological Association, Washington DC, 1996). 10.1037/10187-002
[5]
Colby, C. L., Duhamel, J.-R. & Goldberg, M. E. Visual, presaccadic and cognitive activation of single neurons in monkey lateral intraparietal area. J. Neurophysiol. 76, 2841–2852 (1996). 10.1152/jn.1996.76.5.2841
[6]
Livingstone, M. S., Freedman, D. C. & Hubel, D. H. Visual responses in V1 of freely viewing monkeys. Cold Spring Harb. Symp. Quant. Biol. 61, 27–37 (1996). 10.1101/sqb.1996.061.01.006
[7]
Burman, D. D. & Segraves, M. A. Primate frontal eye field activity during natural scanning eye movements. J. Neurophysiol. 71, 1266–1271 (1994). 10.1152/jn.1994.71.3.1266
[8]
Snyder, L. H., Batista, A. P. & Andersen, R. A. Coding of intention in the posterior parietal cortex. Nature 386, 167–170 (1997). 10.1038/386167a0
[9]
Lynch, J. C., Graybiel, A. M. & Lobeck, L. J. The differential projection of two cytoarchitectonic subregions of the inferior parietal lobule of macaque upon the deep layers of the superior colliculus. J. Comp. Neurol. 235, 241–254 (1985). 10.1002/cne.902350207
[10]
Blatt, G. J., Andersen, R. A. & Stoner, G. R. Visual receptive field organization and cortico-cortical connections of the lateral intraparietal area (area LIP) in the macaque. J. Comp. Neurol. 299, 421–445 (1990). 10.1002/cne.902990404
[11]
Stanton, G. B., Bruce, C. J. & Goldberg, M. E. Topography of projections to posterior cortical areas from the macaque frontal eye fields. J. Comp. Neurol. 353, 291–305 (1995). 10.1002/cne.903530210
[12]
Koch, C. & Ullman, S. Shifts in selective visual attention: towards the underlying neural circuitry. Hum. Neurobiol. 4, 219–227 (1985).
[13]
Rao, R., Zelinsky, G., Hayhoe, M. & Ballard, D. Modelling saccade targeting in visual searchin Advances in Neural Information Processing Systems 8 (eds Touretsky, D., Mozer, M. & Hasselmo, M.) (MIT Press, Cambridge, MA, 1996).
[14]
Wolfe, J. M. Guided Search 2.0: a revised model of visual search. Psychonom. Bull. Rev. 1, 202–238 (1994). 10.3758/bf03200774
[15]
Treisman, A. The binding problem. Curr. Opin. Neurobiol. 6, 171–178 (1996). 10.1016/s0959-4388(96)80070-5
[16]
Irwin, D. E. Integrating information across saccadic eye movements. Curr. Direct. Psychol. Sci. 5, 94–100 (1996). 10.1111/1467-8721.ep10772833
[17]
Baizev, J. S., Ungerleider, L. G. & Desimone, Z. Organization of visual inputs to the inferior temporal and posterior parietal cortex in macaques. J. Neurosci. 11, 168–190 (1991). 10.1523/jneurosci.11-01-00168.1991
[18]
Desimone, R. & Duncan, J. Neural mechanisms of selective visual attention. Annu. Rev. Neurosci. 18, 183–222 (1995). 10.1146/annurev.ne.18.030195.001205
[19]
Hays, A. V., Richmond, B. J. & Optican, L. M. AUNIX-based multiple process system for real-time data acquisition and control. WESCON Conf. Proc. 2, 1–10 (1982).
[20]
Gnadt, J. W. & Andersen, R. A. Memory related motor planning activity in posterior parietal cortex of macaque. Exp. Brain Res. 70, 216–220 (1988). 10.1007/bf00271862
[21]
Barash, S., Bracewell, R. M., Fogassi, L., Gnadt, J. W. & Andersen, R. A. Saccade-related activity in the lateral intraparietal area. I. Temporal properties. J. Neurophysiol. 66, 1095–1108 (1991). 10.1152/jn.1991.66.3.1095
[22]
Richmond, B. J. & Optican, L. M. Temporal encoding of two-dimensional patterns by single units in primate inferior temporal cortex: II. Quantification of response waveform. J. Neurophysiol. 57, 147–161 (1987). 10.1152/jn.1987.57.1.147
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817
Citations
22
References
Details
Published
Jan 01, 1998
Vol/Issue
391(6666)
Pages
481-484
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Cite This Article
Jacqueline P. Gottlieb, Makoto Kusunoki, Michael E. Goldberg (1998). The representation of visual salience in monkey parietal cortex. Nature, 391(6666), 481-484. https://doi.org/10.1038/35135
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