| Literature DB >> 29632391 |
M Alonzo1, D Moscatelli1, L Bastiani1, A Belardini1, C Soci2, E Fazio3.
Abstract
Ethology has shown that animal groups or colonies can perform complex calculation distributing simple decision-making processes to the group members. For example ant colonies can optimize the trajectories towards the food by performing both a reinforcement (or a cancellation) of the pheromone traces and a switch from one path to another with stronger pheromone. Such ant's processes can be implemented in a photonic hardware to reproduce stigmergic signal processing. We present innovative, completely integrated X-junctions realized using solitonic waveguides which can provide both ant's decision-making processes. The proposed X-junctions can switch from symmetric (50/50) to asymmetric behaviors (80/20) using optical feedbacks, vanishing unused output channels or reinforcing the used ones.Entities:
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Year: 2018 PMID: 29632391 PMCID: PMC5890259 DOI: 10.1038/s41598-018-24084-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Scheme of the Ant Colony procedure for food search. Ants go abroad following random trajectories and leaving a pheromone trace along the path. When food is found, the good trajectory is reinforced by means of the pheromone. All other ants will follow the reinforced path, leaving the other pheromone signals to vanish. (b) Simulations of the soliton waveguide formation (black/white on the left-hand side) and of the propagation inside the X-junction of a further signal at 1.3 μm (colored on the right-hand side); (c) simulations of the soliton waveguide formation (black/white on the left-hand side) and of the propagation inside the X-junction of a further signal at 800 nm (colored on the right-hand side); (d) signal powers at the output. In red the outputs at 800 nm, while in blue the 1.3 μm ones. Circles correspond to the signal power at the exit 2 while the squares correspond to the signal power at the exit 1.
Figure 2(a) Experimental images of the single channel self-confinement and waveguiding; (b) experimental transverse profiles of the output solitonic channels (colored images on the left-hand side) and the corresponding transported IR signal at 1.3 mm; (c) experimental data and numerical line of the signal power transferred to channel 2 from channel 1; (d) experimental transverse profiles of the output solitonic channels (on the left-hand side) and the corresponding transported IR signal at 800 nm; (e) experimental transverse profiles of the output solitonic channels (on the left-hand side) and the corresponding transported IR signal at 800 nm for a back-reinforcement.