Oscillations in Spurious States of the Associative Memory Model with Synaptic Depression

Shin Murata, Yosuke Otsubo, K. Nagata, M. Okada
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引用次数: 2

Abstract

The associative memory model is a typical neural network model, which can store discretely distributed fixed-point attractors as memory patterns. When the network stores the memory patterns extensively, however, the model has other attractors besides the memory patterns. These attractors are called spurious memories. Both spurious states and memory states are equilibrium, so there is little difference between their dynamics. Recent physiological experiments have shown that short-term dynamic synapse called synaptic depression decreases its transmission efficacy to postsynaptic neurons according to the activities of presynaptic neurons. Previous studies have shown that synaptic depression induces oscillation in the network and decreases the storage capacity at finite temperature. How synaptic depression affects spurious states, however, is still unclear. We investigate the effect of synaptic depression on spurious states through Monte Carlo simulation. The results demonstrate that synaptic depression does not affect the memory states but mainly destabilizes the spurious states and induces the periodic oscillations.
突触抑制下联想记忆模型的伪态振荡
联想记忆模型是一种典型的神经网络模型,它可以存储离散分布的不动点吸引子作为记忆模式。然而,当网络广泛存储记忆模式时,除了记忆模式外,模型还具有其他吸引子。这些吸引子被称为虚假记忆。伪态和记忆态都是平衡态,所以它们的动力学性质差别不大。最近的生理实验表明,短期动态突触(即突触抑制)根据突触前神经元的活动而降低其向突触后神经元的传递效率。以往的研究表明,在有限温度下,突触抑制会引起神经网络的振荡并降低存储容量。然而,突触抑制如何影响虚假状态仍不清楚。我们通过蒙特卡罗模拟研究了突触抑制对伪态的影响。结果表明,突触抑制并不影响记忆状态,但主要是使伪态不稳定,引起周期振荡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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