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References

1
K. Albus and W. Wolf. Early postnatal development of neuronal function in the kitten's visual cortex: A laminar analysis. Journal of Physiology, 348:153--185, 1984.

2
Y. Amir, M. Harel, and R. Malach. Cortical hierarchy reflected in the organization of intrinsic connections in macaque monkey visual cortex. Journal of Comparative Neurology, 334:19--46, 1993.

3
L. A. Bauman and A. B. Bonds. Inhibitory refinement of spatial frequency selectivity in single cells of the cat striate cortex. Vision Research, 31(6):933--944, 1991.

4
A. B. Bonds. Development of orientation tuning in the visual cortex of kittens. In R. D. Freeman, editor, Developmental Neurobiology of Vision, 31--41. Plenum, New York, 1979.

5
B. O. Braastad and P. Heggelund. Development of spatial receptive-field organization and orientation selectivity in kitten striate cortex. Journal of Neurophysiology, 53:1158--1178, 1985.

6
A. Burkhalter, K. L. Bernardo, and V. Charles. Development of local circuits in human visual cortex. Journal of Neuroscience, 13:1916--1931, May 1993.

7
E. M. Callaway and L. C. Katz. Emergence and refinement of clustered horizontal connections in cat striate cortex. Journal of Neuroscience, 10:1134--1153, 1990.

8
E. M. Callaway and L. C. Katz. Effects of binocular deprivation on the development of clustered horizontal connections in cat striate cortex. Proceedings of the National Academy of Sciences, USA, 88:745--749, 1991.

9
K. K. De Valois and R. B. H. Tootell. Spatial-frequency-specific inhibition in cat striate cortex cells. Journal of Physiology, 336:359--376, 1983.

10
D. W. Dong. Associative decorrelation dynamics in visual cortex. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

11
Shimon Edelman. Why have lateral connections in the visual cortex? In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

12
R. A. Fisken, L. J. Garey, and T. P .S. Powell. The intrinsic, association and commissural connections of area 17 of the visual cortex. Philosophical Transactions of the Royal Society of London Series B, 272:487, 1975.

13
C. D. Gilbert, J. A. Hirsch, and T. N. Wiesel. Lateral Interactions in visual cortex. In Cold Spring Harbor Symposia on Quantitative Biology, Volume LV, 663--677. Cold Spring Harbor Laboratory Press, 1990.

14
C. D. Gilbert and T. N. Wiesel. Morphology and intracortical projections of functionally identified neurons in cat visual cortex. Nature, 280:120--125, 1979.

15
C. D. Gilbert and T. N. Wiesel. Columnar specificity of intrinsic horizontal and corticocortical connections in cat visual cortex. Journal of Neuroscience, 9:2432--2442, 1989.

16
C. D. Gilbert and T. N. Wiesel. Receptive field dynamics in adult primary visual cortex. Nature, 356:150--152, March 1992.

17
A. Grinvald, E. E. Lieke, R. D. Frostig, and R. Hildesheim. Cortical point-spread function and long-range lateral interactions revealed by real-time optical imaging of macaque monkey primary visual cortex. Journal of Neuroscience, 14:2545--2568, 1994.

18
Y. Hata, T. Tsumoto, H. Sato, K. Hagihara, and H. Tamura. Development of local horizontal interactions in cat visual cortex studied by cross-correlation analysis. Journal of Neurophysiology, 69:40--56, January 1993.

19
J. A. Hirsch and C. D. Gilbert. Synaptic physiology of horizontal connections in the cat's visual cortex. Journal of Neuroscience, 11:1800--1809, June 1991.

20
D. H. Hubel and T. N. Wiesel. Receptive fields of single neurons in the cat's striate cortex. Journal of Physiology, 148:574--591, 1959.

21
D. H. Hubel and T. N. Wiesel. Receptive fields, binocular interaction and functional architecture in the cat's visual cortex. Journal of Physiology, 160:106--154, 1962.

22
D. H. Hubel and T. N. Wiesel. Receptive fields and functional architecture in two nonstriate visual areas (18 and 19) of the cat. Journal of Neurophysiology, 28:229--289, 1965.

23
D. H. Hubel and T. N. Wiesel. Sequence regularity and geometry of orientation columns in the monkey striate cortex. Journal of Comparative Neurology, 158:267--294, 1974.

24
D. H. Hubel, T. N. Wiesel, and S. LeVay. Plasticity of ocular dominance columns in monkey striate cortex. Philosophical Transactions of the Royal Society of London Series B, 278:377--409, 1977.

25
M. K. Kapadia, C. D. Gilbert, and G. Westheimer. A quantitative measure for short-term cortical plasticity in human vision. Journal of Neuroscience, 14:451--457, January 1994.

26
L. C. Katz and E. M. Callaway. Development of local circuits in mammalian visual cortex. Annual Review of Neuroscience, 15:31--56, 1992.

27
S. Löwel. Ocular dominance column development: Strabismus changes the spacing of adjacent columns in cat visual cortex. Journal of Neuroscience, 14(12):7451--7468, 1994.

28
S. Löwel and W. Singer. Selection of intrinsic horizontal connections in the visual cortex by correlated neuronal activity. Science, 255:209--212, 1992.

29
H. J. Luhmann, L. Martínez Millán, and W. Singer. Development of horizontal intrinsic connections in cat striate cortex. Experimental Brain Research, 63:443--448, 1986.

30
J. A. Marshall. Self-organizing neural networks for perception of visual motion. Neural Networks, 3:45--74, 1990.

31
J. A. Marshall and R. Alley. A self-organizing neural network that learns to detect and represent visual depth from occlusion events. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

32
J. S. McCasland, K. L. Bernardo, K. L. Probst, and T. A. Woolsey. Cortical local circuit axons do not mature after early deafferentation. Proceedings of the National Academy of Sciences, USA, 89:1832--1836, March 1992.

33
B. A. McGuire, C. D. Gilbert, P. K. Rivlin, and T. N. Wiesel. Targets of horizontal connections in macaque primary visual cortex. Journal of Comparative Neurology, 305:370--392, 1991.

34
M. W. Pettet and C. D. Gilbert. Dynamic changes in receptive-field size in cat primary visual cortex. Proceedings of the National Academy of Sciences, USA, 89:8366--8370, 1992.

35
U. Polat, A. M. Norcia, and D. Sagi. The pattern and functional significance of long-range interactions in human visual cortex. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

36
S. P. Sabatini. Recurrent inhibition and clustered connectivity as a basis for Gabor-like receptive fields in the visual cortex. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

37
H. D. Schwark and E. G. Jones. The distribution of intrinsic cortical axons in area 3b of cat primary somatosensory cortex. Experimental Brain Research, 78:501--513, 1989.

38
W. Singer, C. Gray, A. Engel, P. König, A. Artola, and S. Bröcher. Formation of cortical cell assemblies. In Cold Spring Harbor Symposia on Quantitative Biology, Vol. LV, 939--952. Cold Spring Harbor Laboratory Press, 1990.

39
J. Sirosh, R. Miikkulainen, and J. A. Bednar. Self-organization of orientation maps, lateral connections, and dynamic receptive fields in the primary visual cortex. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

40
D. Somers, L. J. Toth, E. Todorov, S. C. Rao, D.-S. Kim, S. B. Nelson, A. G. Siapas, and M. Sur. Variable gain control in local cortical circuitry supports context-dependent modulation by long-range connections. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

41
J. G. Taylor and F. N. Alavi. A basis for long-range inhibition across cortex. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

42
M. Usher, M. Stemmler, and E. Niebur. The role of lateral connections in visual cortex: Dynamics and information processing. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

43
T. R. Vidyasagar and A. Mueller. Function of GABA inhibition in specifying spatial frequency and orientation selectivities in cat striate cortex. Experimental Brain Research, 98:31--38, 1994.

44
C. von der Malsburg and W. Singer. Principles of cortical network organization. In P. Rakic and W. Singer, editors, Neurobiology of Neocortex, 69--99. Wiley, New York, 1988.

45
D. Wang. Synchronous oscillations based on lateral connections. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.

46
T. N. Wiesel. Postnatal development of the visual cortex and the influence of the environment. Nature, 299:583--591, 1982.

47
L. Wiskott and C. von der Malsburg. Face recognition by dynamic link matching. In J. Sirosh, R. Miikkulainen, and Y. Choe, editors, Lateral Interactions in the Cortex: Structure and Function. The UTCS Neural Networks Research Group, Austin, TX, 1996. Electronic book, ISBN 0-9647060-0-8, http://www.cs.utexas.edu/users/nn/web-pubs/htmlbook96.


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Next: About this document Up: Introduction: The Emerging Understanding Previous: Overview of This