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Rapid synchronization through fast threshold modulation

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Abstract

Synchronization properties of locally coupled neural oscillators were investigated analytically and by computer simulation. When coupled in a manner that mimics excitatory chemical synapses, oscillators having more than one time scale (relaxation oscillators) are shown to approach synchrony using mechanisms very different from that of oscillators with a more sinusoidal waveform. The relaxation oscillators make critical use of fast modulations of their thresholds, leading to a rate of synchronization relatively independent of coupling strength within some basin of attraction; this rate is faster for oscillators that have conductance-based features than for neural caricatures such as the FitzHugh-Nagumo equations that lack such features. Computer simulations of one-dimensional arrays show that oscillators in the relaxation regime synchronize much more rapidly than oscillators with the same equations whose parameters have been modulated to yield a more sinusoidal waveform. We present a heuristic explanation of this effect based on properties of the coupling mechanisms that can affect the way the synchronization scales with array length. These results suggest that the emergent synchronization behavior of oscillating neural networks can be dramatically influenced by the intrinsic properties of the network components. Possible implications for perceptual feature binding and attention are discussed.

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References

  • Baldi P, Meir R (1990) Computing with arrays of coupled oscillators: An application to preattentive texture discrimination. Neural Comput 2:458–471

    Google Scholar 

  • Cole KS, Guttman R, Bezanilla F (1970) Nerve excitation without threshold. Proc Natl Acad Sci (USA) 65:884–891

    Google Scholar 

  • Crick F (1984) Function of the thalamic reticular complex: the searchlight hypothesis. Proc Natl Acad Sci (USA) 81:4586–4590

    Google Scholar 

  • Eckhorn R, Bauer R, Jordan W, Brosch M, Kruse W, Munk M, Reitbock HJ (1988) Coherent oscillations: A mechanism of feature linking in the visual cortex? Biol Cybern 60:121–130

    Google Scholar 

  • Ellias SA, Grossberg S (1975) Pattern formation, contrast control, and oscillations in the short-term memory of shunting on-center, off-surround networks. Biol Cybern 20:69–98

    Google Scholar 

  • Ermentrout GB (1985) The behavior of rings of coupled oscillators. J Math Biol 23:55–74

    Google Scholar 

  • Ermentrout GB, Kopell N (1984) Frequency plateaus in a chain of weakly coupled oscillators, I. SIAM J Math Anal 15:215–237

    Google Scholar 

  • Ermentrout GB, Kopell N (1990) Oscillator death in systems of coupled neural oscillators. SIAM J Appl Math 50:125–146

    Google Scholar 

  • FitzHugh R (1961) Impulses and physiological states in models of nerve membrane. Biophys J 1:445–466

    Google Scholar 

  • Freeman WJ (1991) The physiology of perception. Sci Am 264 (2):78–85

    Google Scholar 

  • Golomb D, Hansel D, Shraiman B, Sompolinsky H (1992) Clustering in globally coupled phase oscillators. Phys Rev A 45:3516–3530

    Google Scholar 

  • Gray CM, König P, Engel A, Singer W (1989) Oscillatory responses in cat visual cortex exhibit intercolumnar synchronization which reflects global stimulus properties. Nature 338:334–337

    Google Scholar 

  • Gray CM, Singer W (1989) Stimulus-specific neuronal oscillations in orientation columns of cat visual cortex. Proc Natl Acad Sci (USA) 86:1698–1702

    Google Scholar 

  • Grossberg S (1968) Some physiological and biochemical consequences of psychological postulates. Proc Natl Acad Sci (USA) 60:758–765

    Google Scholar 

  • Grossberg S (1973) Contour enhancement, short-term memory, and constancies in reverberating neural networks. SIAM 52:217–257

    Google Scholar 

  • Grossberg S (1976) Adaptive pattern classification and universal recording, II: Feedback, expectation, olfaction, and illusions. Biol Cybern 23:187–202

    Google Scholar 

  • Grossberg S (1978) A theory of visual coding, memory, and development. In: Leeuwenberg E, Buffart H (eds) Formal theories of visual perception. Wiley, New York

    Google Scholar 

  • Grossberg S (1982) Studies of mind and brain: neural principles of learning, perception, development, cognition, and motor control. Reidel Press, Boston

    Google Scholar 

  • Grossberg S, Somers D (1991) Synchronized oscillations during cooperative feature linking in a cortical model of visual perception. Neural Networks 4:453–466

    Google Scholar 

  • Harris-Warrick R, Flamm R (1987) Multiple mechanisms of bursting in a conditioned bursting neuron. J Neurosci 7:2113–2128

    Google Scholar 

  • Kammen DM, Holmes PJ, Koch C (1989) Cortical architecture and oscillations in neural networks: Feed-back versus local coupling. In: Cotterill RJM (eds) Models of brain function. Cambridge University Press, Cambridge, pp 273–284

    Google Scholar 

  • König R, Schillen TB (1991) Stimulus-dependent assembly formation of oscillatory responses: I. Synchronization. Neural Comput 3:155–166

    Google Scholar 

  • Kopell N, Ermentrout GB (1986) Symmetry and phaselocking in chains of weakly coupled oscillators. Comm Pure Appl Math 39:623–660

    Google Scholar 

  • Kopell N, Ermentrout GB (1990) Phase transitions and other phenomena in chains of coupled oscillators. SIAM J Appl Math 50:1014–1052

    Google Scholar 

  • Kopell N, Ermentrout GB (1991) Multiple pulse interactions and averaging in systems of coupled neural oscillators. J Math Biol 29:195–217

    Google Scholar 

  • Kopell N, Somers D (1993) Pulse coupling, bistability, and fractured synchrony in arrays of relaxation oscillators (In preparation)

  • Malsburg C von der, Schneider W (1986) A neural cocktail-party processor. Biol Cybern 54:29–40

    Google Scholar 

  • Mirollo RE, Strogatz SH (1990) Synchronization of pulse-coupled biological oscillators. SIAM J Appl Math 50:1645–1662

    Google Scholar 

  • Mishchenko EF, Rozov N Kh (1980) Differential equations with small parameters and relaxation oscillations. Plenum Press, New York

    Google Scholar 

  • Morris C, Lecar H (1981) Voltage oscillations in the barnacle giant muscle fiber. Biophys J 35:193–213

    Google Scholar 

  • Nagumo J, Arimoto S, Yoshizawa S (1962) An active pulse transmission line simulating nerve axon. Proc IRE 50:2061–2070

    Google Scholar 

  • Niebur E, Kammen DM, Koch C (1991) Phase-locking in 1-D and 2-D networks of oscillating neurons. In: Schuster HG (eds) Nonlinear dynamics and neuronal networks. VCH Weinheim, pp 173–203

    Google Scholar 

  • Press WH, Flannery BP, Teukolsky SA, Vetterling WT (1988) Numerical recipes in C: the art of scientific computing. Cambridge University Press, Cambridge, pp 566–597

    Google Scholar 

  • Schöner G, Kelso JAS (1988) A synergetic theory of environmentally specified and learned patterns of movement coordination, II. Biol Cybern 58:81–89

    Google Scholar 

  • Schuster HG, Wagner P (1990) A model for neuronal oscillations in the visual cortex. 2. Phase description of the feature dependent synchronization. Biol Cybern 64:83–85

    Google Scholar 

  • Sperling G, Sondhi MM (1968) Model for visual luminance discrimination and flicker detection. J Opt Soc Am 58:1133–1145

    Google Scholar 

  • Sherman A, Rinzel J (1992) Rhythmogenic effects of weak electrotonic coupling in neuronal models. Proc Natl Acad Sci (USA) 89: 2471–2474

    Google Scholar 

  • Sompolinsky H, Golomb D, Kleinfeld D (1990) Global processing of visual stimuli in a neural network of coupled oscillators. Proc Natl Acad Sci (USA) 87:7200–7204

    Google Scholar 

  • Treisman A (1982) Perceptual grouping and attention in visual search for features and for objects. J Exp Psychol Hum Percept Perform 8:194–214

    Google Scholar 

  • Treisman A, Gelade G (1980) A feature integration theory of attention. Cogn Psychol 12:97–136

    Google Scholar 

  • Tsang KY, Mirollo RE, Strogatz SH, Wiesenfeld K (1991) Dynamics of a globally coupled oscillator array. Physica D 48:102–112

    Google Scholar 

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Supported in part by NASA (NGT-50497)

Supported in part by NSF (DMS-8901913), and NIMH-47150

Present address and address for correspondence: Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology, E25-618, Cambridge, MA 02139, USA

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Somers, D., Kopell, N. Rapid synchronization through fast threshold modulation. Biol. Cybern. 68, 393–407 (1993). https://doi.org/10.1007/BF00198772

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  • DOI: https://doi.org/10.1007/BF00198772

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