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arxiv: 0908.1547 · v1 · pith:RXP4YVX2new · submitted 2009-08-11 · ❄️ cond-mat.dis-nn · cond-mat.stat-mech

Symmetric sequence processing in a recurrent neural network model with a synchronous dynamics

classification ❄️ cond-mat.dis-nn cond-mat.stat-mech
keywords statescyclicsymmetriccorrelateddynamicsfrozen-inmodelnetwork
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The synchronous dynamics and the stationary states of a recurrent attractor neural network model with competing synapses between symmetric sequence processing and Hebbian pattern reconstruction is studied in this work allowing for the presence of a self-interaction for each unit. Phase diagrams of stationary states are obtained exhibiting phases of retrieval, symmetric and period-two cyclic states as well as correlated and frozen-in states, in the absence of noise. The frozen-in states are destabilised by synaptic noise and well separated regions of correlated and cyclic states are obtained. Excitatory or inhibitory self-interactions yield enlarged phases of fixed-point or cyclic behaviour.

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