How synapses can enhance sensibility of a neural network

نویسندگان

  • P. R. Protachevicz
  • F. S. Borges
  • K. C. Iarosz
  • I. L. Caldas
  • M. S. Baptista
  • R. L. Viana
  • E. L. Lameu
  • E. E. N. Macau
  • A. M. Batista
چکیده

In this work, we study the dynamic range in a neuronal network modelled by cellular automaton. We consider deterministic and non-deterministic rules to simulate electrical and chemical synapses. Chemical synapses have an intrinsic time-delay and are susceptible to parameter variations guided by learning Hebbian rules of behaviour. Our results show that chemical synapses can abruptly enhance sensibility of the neural network, a manifestation that can become even more predominant if learning rules of evolution are applied to the chemical synapses. Keyword: plasticity, cellular automaton, dynamic range

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تاریخ انتشار 2017