Bukh A V, Schöll E, Anishchenko V S
Department of Physics, Saratov State University, Astrakhanskaya str. 83, Saratov 410012, Russia.
Institut für Theoretische Physik, Technische Universität Berlin, Hardenbergstraße 36, Berlin 10623, Germany.
Chaos. 2019 May;29(5):053105. doi: 10.1063/1.5092352.
The paper describes the effects of mutual and external synchronization of spiral wave structures in two coupled two-dimensional lattices of coupled discrete-time oscillators. Each lattice is given by a 2D N×N network of nonlocally coupled Nekorkin maps which model neuronal activity. We show numerically that spiral wave structures, including spiral wave chimeras, can be synchronized and establish the mechanism of the synchronization scenario. Our numerical studies indicate that when the coupling strength between the lattices is sufficiently weak, only a certain part of oscillators of the interacting networks is imperfectly synchronized, while the other part demonstrates a partially synchronous behavior. If the spatiotemporal patterns in the lattices do not include incoherent cores, imperfect synchronization is realized for most oscillators above a certain value of the coupling strength. In the regime of spiral wave chimeras, the imperfect synchronization of all oscillators cannot be achieved even for sufficiently large values of the coupling strength.
本文描述了耦合离散时间振荡器的两个二维晶格中螺旋波结构的相互同步和外部同步的影响。每个晶格由一个二维N×N的非局部耦合涅科尔金映射网络给出,该网络对神经元活动进行建模。我们通过数值模拟表明,包括螺旋波嵌合体在内的螺旋波结构可以实现同步,并建立了同步过程的机制。我们的数值研究表明,当晶格之间的耦合强度足够弱时,相互作用网络中只有一部分振荡器不完全同步,而另一部分则表现出部分同步行为。如果晶格中的时空模式不包括非相干核心,那么在耦合强度超过某个值时,大多数振荡器会实现不完全同步。在螺旋波嵌合体状态下,即使耦合强度足够大,也无法实现所有振荡器的不完全同步。