Classification of musical intervals by spiking neural networks: Perfect student in solfége classes

Author:

Bukh A. V.1ORCID,Rybalova E. V.1ORCID,Shepelev I. A.12ORCID,Vadivasova T. E.1ORCID

Affiliation:

1. Institute of Physics, Saratov State University 1 , 83 Astrakhanskaya Street, Saratov 410012, Russia

2. Almetyevsk State Petroleum Institute 2 , 2 Lenin Street, Almetyevsk 423462, Russia

Abstract

We investigate a spike activity of a network of excitable FitzHugh–Nagumo neurons, which is under constant two-frequency auditory signals. The neurons are supplemented with linear frequency filters and nonlinear input signal converters. We show that it is possible to configure the network to recognize a specific frequency ratio (musical interval) by selecting the parameters of the neurons, input filters, and coupling between neurons. A set of appropriately configured subnetworks with different topologies and coupling strengths can serve as a classifier for musical intervals. We have found that the selective properties of the classifier are due to the presence of a specific topology of coupling between the neurons of the network.

Funder

Russian Science Foundation

Publisher

AIP Publishing

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