next up previous
Next: About this document Up: Synchronous Oscillations Based on Previous: Acknowledgments

References

1
M. Abeles. Local Cortical Circuits. Springer, New York, 1982.

2
D. Ankaoua and R. Malach. Evidence for plasticity of intrinsic horizontal connections in area 17 of the rat, Israeli Journal of Medical Science, 29:555-569, 1993.

3
B. Baird. Nonlinear dynamics of pattern formation and pattern recognition in the rabbit olfactory bulb, Physica D, 22:150-175, 1986.

4
P. Baldi and R. Meir. Computing with arrays of coupled oscillators: An application to preattentive texture discrimination, Neural Computation, 2:458-471, 1990.

5
S. L. Bressler, R. Coppola, and R. Nakamura. Episodic multiregional cortical coherence at multiple frequencies during visual task performance, Nature, 366:153-156, 1993.

6
I. Biederman. Recognition-by-component: A theory of human image understanding, Psychological Review, 94:115-147, 1987.

7
J. Buhmann. Oscillations and low firing rates in associative memory neural networks, Physical Review A, 40:4145-4148, 1989.

8
S. Campbell and D. L. Wang. Relaxation oscillators with time delay coupling, Proceedings of the World Congress on Neural Networks (WCNN-95), Washington DC, 1995.

9
S. Campbell and D. L. Wang. Synchronization and desynchronization in a network of Wilson-Cowan oscillators, IEEE Transactions on Neural Networks, in press.

10
T. Chawanya, T. Aoyagi, I. Nishikawa, K. Okuda, and Y. Kuramoto. A model for feature linking via collective oscillations in the primary visual cortex, Biological Cybernetics, 68:483-490, 1993.

11
A. H. Cohen, P. J. Holmes, and R. H. Rand. The nature of coupling between segmental oscillators of the lamprey spinal generator for locomotion: A mathematical model, Journal of Mathematical Biology, 13:345-369, 1982.

12
F. Crick. Function of the thalamic reticular complex: The searchlight hypothesis, Proceedings of the National Academy of Sciences USA, 81:4586-4590, 1984.

13
R. Eckhorn, R. Bauer, W. Jordan, M. Brosch, W. Kruse, M. Munk, and H. J. Reitboeck. Coherent oscillations: A mechanism of feature linking in the visual cortex? Biological Cybernetics, 60:121-130, 1988.

14
A. K. Engel, P. König, A. K. Kreiter, and W. Singer, Interhemispheric synchronization of oscillatory neuronal responses in cat visual cortex, Science, 252:1177-1179, 1991.

15
A. K. Engel, P. König, A. K. Kreiter, and W. Singer, Synchronization of oscillatory neuronal responses between striate and extrastriate visual cortical areas of the cat, Proceedings of the National Academy of Sciences USA, 88:6048-6052, 1991.

16
G. B. Ermentrout. Stable periodic solutions to discrete and continuum arrays of weakly coupled nonlinear oscillators, SIAM Journal of Applied Mathematics, 52:1665-1687, 1992.

17
D. Geman, S. Geman, C. Graffigne, and P. Dong. Boundary detection by constrained optimization, IEEE Transactions on Pattern Analysis and Machine Intelligence, 12:609-628, 1990.

18
C. D. Gilbert. Horizontal integration and cortical dynamics, Neuron, 9:1-13, 1992.

19
C. D. Gilbert, J. A. Hirsch, and T. N. Wiesel. Clustered intrinsic connections in cat visual cortex, Journal of Neuroscience, 3:1116-1133, 1983.

20
C. D. Gilbert, and T. N. Wiesel. Columnar specificity of intrinsic connections in cat visual cortex, Journal of Neuroscience, 3:1116-1133, 1983.

21
C. D. Gilbert, and T. N. Wiesel. Lateral interactions in visual cortex, Cold Spring Harbor Symposia on Quantitative Biology, vol. LV, 663-677, 1990.

22
G. J. Goodhill, and H. G. Barrow. The role of weight normalization in competitive learning, Neural Computation, 255-269, 1994.

23
E. R. Grannan, D. Kleinfeld, and H. Sompolinsky. Stimulus-dependent synchronization of neuronal assemblies, Neural Computation, 5:550-569, 1993.

24
C. M. Gray, P. König, A. K. Engel, and W. Singer. Oscillatory responses in cat visual cortex exhibit inter-columnar synchronization which reflects global stimulus properties, Nature, 338:334-337, 1989.

25
S. Grossberg and D. Somers. Synchronized oscillations during cooperative feature linking in a cortical model of visual perception, Neural Networks, 4:453-466, 1991.

26
S. Grossberg and L. Wyse. A neural network architecture for figure-ground separation of connected scenic figures, Neural Networks, 4:723-742, 1991.

27
D. O. Hebb. The Organization of Behavior. Wiley & Sons, New York, 1949.

28
D. Horn and M. Usher. Parallel activation of memories in an oscillatory neural network, Neural Computation, 3:31-43, 1991.

29
A. L. Hodgkin and A. F. Huxley. A quantitative description of membrane current and its application to conduction and excitation in nerve, Journal of Physiology, 117:500-544, 1952.

30
D. M. Kammen, P. J. Holmes, and C. Koch. Origin of oscillations in visual cortex: Feedback versus local coupling, in Models of Brain Functions, R.M.J. Cotterill, Ed. Cambridge University Press, Cambridge, England, 273-284, 1989.

31
E. R. Kandel, J. H. Schwartz, and T. M. Jessell. Principles of Neural Science 3rd edition, Elsevier, New York, 1991.

32
K. Koffka. Principles of Gestalt Psychology. Harcourt, New York, 1935.

33
N. Kopell and G. B. Ermentrout. Symmetry and phaselocking in chains of weakly coupled oscillators, Comm. Pure Appl. Math., 39:623-660, 1986.

34
P. König and T. B. Schillen. Stimulus-dependent assembly formation of oscillatory responses: I. Synchronization, Neural Computation, 3:155-166, 1991.

35
P. König, A. K. Engel, P. R. Roelfsema, and W. Singer. How precise is neuronal synchronization? Neural Computation, 7:469-485, 1995.

36
Y. Kuramoto. Cooperative dynamics of oscillator community: A study based on lattice of rings, Progress of Theoretical Physics Suppl., 79:223-240, 1984.

37
J. B. Levitt, T. Yoshioka, J. S.Lund. Intrinsic cortical connections in macaque visual area V2: Evidence for interaction between different functional streams, Journal of Comparative Neurology, 342:551-570, 1994.

38
R. Llinás and U. Ribary. Coherent 40-Hz oscillation characterizes dream state in humans, Proceedings of the National Academy of Sciences USA, 90:2078-2082, 1993.

39
S. Löwel and W. Singer. Selection of intrinsic horizontal connections in the visual cortex by correlated neuronal activity, Science, 255:209-212, 1992.

40
R. Malach, Y. Amir, M. Harel, and A. Grinvald. Relationship between intrinsic connections and functional architecture revealed by optical imaging and in vivo targeted biocytin injections in primate striate cortex, Proceedings of the National Academy of Sciences USA, 90:10469-10473, 1993.

41
N. D. Mermin and H. Wagner. Absence of ferromagnetism or antiferromagnetism in one- or two-dimensional isotropic Heisenberg models, Physical Review Letters, 17:1133-1136, 1966.

42
P. M. Milner. A model for visual shape recognition, Psychological Review, 81:521-535, 1974.

43
T. Murata and H. Shimizu. Oscillatory binocular system and temporal segmentation of stereoscopic depth surfaces, Biological Cybernetics, 68:381-390, 1992.

44
V. N. Murthy and E. E. Fetz. Coherent 25- to 35-Hz oscillations in the sensorimotor cortex of awake behaving monkeys, Proceedings of the National Academy of Sciences USA, 89:5670-5674, 1992.

45
U. Ribary, A. A. Ioannides, K. D. Singh, R. Hasson, J. P. R. Bolton, F. Lado, A. Mogilner, and R. Llinás. Magnetic field tomography of coherent thalamocortical 40-Hz oscillations in humans, Proceedings of the National Academy of Sciences USA, 88:11037-11041, 1991.

46
I. Rock,and S. Palmer. The legacy of Gestalt psychology, Sci. Am., 263:84-90, 1990.

47
H. Sakaguchi, S. Shinomoto, and Y. Kuramoto. Local and global self-entrainments in oscillator lattices, Progress of Theoretical Physics, 77:1005-1011, 1987.

48
J. N. Sanes and J. P. Donoghue. Oscillations in local field potentials of the primate motor cortex during voluntary movement, Proceedings of the National Academy of Sciences USA, 90:4470-4474, 1993.

49
S. Sarkar and K. L. Boyer. Perceptual organization in computer vision: A review and a proposal for a classificatory structure, IEEE Transactions on Systems, Man, and Cybernetics, 23:382-399, 1993.

50
T. B. Schillen and P. König. Stimulus-dependent assembly formation of oscillatory responses: II. Desynchronization, Neural Computation, 3:155-166, 1991.

51
W. Singer. Synchronization of cortical activity and its putative role in information processing and learning, Annual Review of Physiology, 55:349-374, 1993.

52
W. Singer and C. M. Gray. Visual feature integration and the temporal correlation hypothesis, Annual Review of Neuroscience, 18:555-586, 1995.

53
D. Somers and N. Kopell. Rapid synchronization through fast threshold modulation, Biological Cybernetics, 68:393-407, 1993.

54
D. Somers and N. Kopell. Waves and synchrony in networks of oscillators of relaxation and non-relaxation type, Physica D, 1995.

55
H. Sompolinsky, D. Golomb, and D. Kleinfeld. Cooperative dynamics in visual processing, Physical Review A, 43:6990-7011, 1991.

56
O. Sporns, J. A. Gally, G. N. Reeke Jr., and G. M. Edelman.

Reentrant signaling among simulated neuronal groups leads to coherency in their oscillatory activity, Proceedings of the National Academy of Sciences USA, 86:7265-7269, 1989.

57
O. Sporns, G. Tononi, and G. M. Edelman. Modeling perceptual grouping and figure-ground segregation by means of active reentrant connections, Proceedings of the National Academy of Sciences USA, 88:129-133, 1991.

58
M. Tanifuji, T. Sugiyama, and K. Murase. Horizontal propagation of excitation in rat visual cortical slices revealed by optical imaging, Science, 266:1057-1059, 1994.

59
D. Terman and D. L. Wang. Global competition and local cooperation in a network of neural oscillators, Physica D, 81:148-176, 1995.

60
D. C. van Essen, C. H. Anderson, and D. J. Felleman. Information processing in the primate visual system: An integrated systems perceptive, Science, 255:419-423, 1992.

61
C. von der Malsburg. Self-organization of orientation sensitive cells in the striate cortex, Kybernetik, 14:85-100, 1973.

62
C. von der Malsburg. The correlation theory of brain functions, Internal Report 81-2, Max-Planck-Institut for Biophysical Chemistry, Göttingen, FRG, 1981.

63
C. von der Malsburg and J. Buhmann. Sensory segmentation with coupled neural oscillators, Biological Cybernetics, 67:233-246, 1992.

64
C. von der Malsburg and W. Schneider. A neural cocktail-party processor, Biological Cybernetics, 54:29-40, 1986.

65
D. L. Wang. Emergent synchrony in locally coupled neural oscillators, Technical Report OSU-CISRC-12/92-TR36, Department of Computer and Information Science, The Ohio State University, 1992.

66
D. L. Wang. Modeling global synchrony in the visual cortex by locally coupled neural oscillators Proceedings of the 15th Annual Conference of the Cognitive Science Society, 1058-1063, 1993.

67
D. L. Wang. Pattern recognition: Neural networks in perspective, IEEE Expert, 8:52-60, 1993.

68
D. L. Wang. Emergent synchrony in locally coupled neural oscillators, IEEE Transactions on Neural Networks, 1995.

69
D. L. Wang and D. Terman. Locally excitatory globally inhibitory oscillator networks, IEEE Transactions on Neural Networks, 6:283-286, 1995.

70
D. L. Wang and D. Terman. Image segmentation based on oscillatory correlation, Proceedings of the World Congress on Neural Networks (WCNN-95), Washington DC, in press.

71
D. L. Wang, J. Buhmann, and C. von der Malsburg. Segmentation in associative memory, Neural Computation, 2:94-106, 1990

72
H. R. Wilson and J. D. Cowan. Excitatory and inhibitory interactions in localized populations of model neurons, Biophysical Journal, 12:1-24, 1972.

73
M. A. Wilson and J. A. Bower. A computer simulation in primary visual cortex, Neural Computation, 3:498-509, 1991.


next up previous
Next: About this document Up: Synchronous Oscillations Based on Previous: Acknowledgments