Department of Mathematics and Statistics, Boston University, Boston, Massachusetts 02215, USA.
School of Mathematics, Monash University, Clayton, Victoria 3800, Australia.
Chaos. 2021 Dec;31(12):123111. doi: 10.1063/5.0067421.
Chimeras are surprising yet important states in which domains of decoherent (asynchronous) and coherent (synchronous) oscillations co-exist. In this article, we report on the discovery of a new class of chimeras, called mixed-amplitude chimera states, in which the structures, amplitudes, and frequencies of the oscillations differ substantially in the decoherent and coherent regions. These mixed-amplitude chimeras exhibit domains of decoherent small-amplitude oscillations (phase waves) coexisting with domains of stable and coherent large-amplitude or mixed-mode oscillations (MMOs). They are observed in a prototypical bistable partial differential equation with oscillatory dynamics, spatially homogeneous kinetics, and purely local, isotropic diffusion. They are observed in parameter regimes immediately adjacent to regimes in which common large-amplitude solutions exist, such as trigger waves, spatially homogeneous MMOs, and sharp-interface solutions. Also, key singularities, folded nodes, and folded saddles arising commonly in multi-scale, bistable systems play important roles, and these have not previously been studied in systems with chimeras. The discovery of these mixed-amplitude chimeras is an important advance for understanding some processes in neuroscience, pattern formation, and physics, which involve both small-amplitude and large-amplitude oscillations. It may also be of use for understanding some aspects of electroencephalogram recordings from animals that exhibit unihemispheric slow-wave sleep.
嵌合体是一种令人惊讶但又非常重要的状态,其中非相干(异步)和相干(同步)振荡的域共存。在本文中,我们报告了一类新的嵌合体的发现,称为混合幅度嵌合体状态,其中振荡的结构、幅度和频率在非相干和相干区域有很大的不同。这些混合幅度嵌合体表现出非相干小幅度振荡(相位波)的区域与稳定和相干大振幅或混合模式振荡(MMO)的区域共存。它们在具有振荡动力学、空间均匀动力学和纯局部各向同性扩散的典型双稳偏微分方程中被观察到。它们在紧邻存在常见大振幅解的参数区域中被观察到,例如触发波、空间均匀 MMO 和锐界面解。此外,在多尺度双稳态系统中常见的关键奇点、折叠节点和折叠鞍点也起着重要作用,而这些在具有嵌合体的系统中以前没有被研究过。这些混合幅度嵌合体的发现对于理解神经科学、模式形成和物理学中的一些过程是一个重要的进展,这些过程涉及到小幅度和大幅度的振荡。它也可能有助于理解某些表现出单侧慢波睡眠的动物的脑电图记录的某些方面。