Title :
Noise induced pattern switching in randomly distributed delayed swarms
Author :
Lindley, Brandon ; Mier-y-Teran-Romero, Luis ; Schwartz, Ira B.
Author_Institution :
US Naval Res. Labooratory, Washington, DC, USA
Abstract :
We study the effects of noise on the dynamics of a system of coupled self-propelling particles in the case where the coupling is time-delayed, and the delays are discrete and randomly generated. Previous work has demonstrated that the stability of a class of emerging patterns depends upon all moments of the time delay distribution, and predicts their bifurcation parameter ranges. Near the bifurcations of these patterns, noise may induce a transition from one type of pattern to another. We study the onset of these noise-induced swarm re-organizations by numerically simulating the system over a range of noise intensities and for various distributions of the delays. Interestingly, there is a critical noise threshold above which the system is forced to transition from a less organized state to a more organized one. We explore this phenomenon by quantifying this critical noise threshold, and note that transition time between states varies as a function of both the noise intensity and delay distribution.
Keywords :
bifurcation; delay systems; distributed control; multi-agent systems; noise; numerical analysis; bifurcation parameter range; coupled self-propelling particle; distributed delayed swarm; multiagent system; noise induced pattern switching; noise intensity; noise-induced swarm reorganization; numerical simulation; time delay distribution; Bifurcation; Delay effects; Delays; Noise; Robot sensing systems; Standards;
Conference_Titel :
American Control Conference (ACC), 2013
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4799-0177-7
DOI :
10.1109/ACC.2013.6580546