Issue 26, 2023

Implementation of Hebb's rules in a network of excitable chemical cells coupled by pulses

Abstract

A network of four excitable cells with the Belousov–Zhabotinsky (BZ) reaction is considered both theoretically and experimentally. All cells are coupled by pulses with time delays τnj between the moment of a spike in cell #n and the moment of the corresponding perturbation of an addressee (cell #j). The coupling strengths of all connections except the coupling strength C12 between cells #1 and #2 are constant. Cell #1 is periodically perturbed (with period Tex) and sends pulses to cell #2. The value of C12 is controlled by pulses from two other cells (with indexes #5 and #6; cells with indexes #3 and #4 are absent in the considered network), provided the pulses from cell #5 increase C12, while the pulses from cell #6 decrease C12. Cells #5 and #6 are mutually coupled by inhibitory pulses. Depending on the relations between the values of τnj, there are three dynamic modes in the network: (i) the coupling strength C12 increases stepwise, which is the “Hebb mode”, (ii) the C12 decreases stepwise, which is the “anti-Hebb mode”, and (iii) the C12 remains almost unchanged within some small adjustable range, which is the meander mode. The ability to tune the C12via “Hebb” and “anti-Hebb” modes introduces memory in the chemical network and, consequently, a mechanism of learning can be realized. The theoretical network is implemented experimentally using four microcells with the BZ reaction provided the pulse coupling between microcells is realized using optical links.

Graphical abstract: Implementation of Hebb's rules in a network of excitable chemical cells coupled by pulses

Article information

Article type
Paper
Submitted
19 Mar 2023
Accepted
24 May 2023
First published
23 Jun 2023

Phys. Chem. Chem. Phys., 2023,25, 17420-17428

Implementation of Hebb's rules in a network of excitable chemical cells coupled by pulses

V. K. Vanag and I. S. Proskurkin, Phys. Chem. Chem. Phys., 2023, 25, 17420 DOI: 10.1039/D3CP01238G

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