Hebbian learning and spiking neurons

Richard Kempter, Wulfram Gerstner, and J. Leo van Hemmen
Phys. Rev. E 59, 4498 – Published 1 April 1999
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Abstract

A correlation-based (“Hebbian”) learning rule at a spike level with millisecond resolution is formulated, mathematically analyzed, and compared with learning in a firing-rate description. The relative timing of presynaptic and postsynaptic spikes influences synaptic weights via an asymmetric “learning window.” A differential equation for the learning dynamics is derived under the assumption that the time scales of learning and neuronal spike dynamics can be separated. The differential equation is solved for a Poissonian neuron model with stochastic spike arrival. It is shown that correlations between input and output spikes tend to stabilize structure formation. With an appropriate choice of parameters, learning leads to an intrinsic normalization of the average weight and the output firing rate. Noise generates diffusion-like spreading of synaptic weights.

  • Received 6 August 1998

DOI:https://doi.org/10.1103/PhysRevE.59.4498

©1999 American Physical Society

Authors & Affiliations

Richard Kempter*

  • Physik Department, Technische Universität München, D-85747 Garching bei München, Germany

Wulfram Gerstner

  • Swiss Federal Institute of Technology, Center of Neuromimetic Systems, EPFL-DI, CH-1015 Lausanne, Switzerland

J. Leo van Hemmen

  • Physik Department, Technische Universität München, D-85747 Garching bei München, Germany

  • *Electronic address: Richard.Kempter@physik.tu-muenchen.de
  • Electronic address: Wulfram.Gerstner@di.epfl.ch
  • Electronic address: Leo.van.Hemmen@physik.tu-muenchen.de

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Vol. 59, Iss. 4 — April 1999

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