Del Olmo Marta, Schmal Christoph, Herzel Hanspeter
Humboldt-Universität zu Berlin Institute for Theoretical Biology, Berlin, Germany.
Philos Trans R Soc Lond B Biol Sci. 2025 Apr 3;380(1923):20240015. doi: 10.1098/rstb.2024.0015.
Animal vocalizations comprise a rich array of complex sounds that exhibit nonlinear phenomena (NLP), which have fascinated researchers for decades. From the melodic songs of birds to the clicks and whistles of dolphins, many species have been found to produce nonlinear vocalizations, offering a valuable perspective on the mechanisms underlying sound production and potential adaptive functions. By leveraging on the principles of oscillator theory and nonlinear dynamics, animal vocalizations, which are based on coupled oscillators, can be described and conveniently classified. We review the basic ingredients for self-sustained oscillations and how different NLP can emerge. We discuss important terms in the context of oscillator theory: attractor types, phase space, bifurcations and Arnold tongue diagrams. Through a comparative analysis of observed NLP and bifurcation diagrams, our study reviews how the tools of nonlinear dynamics can provide insights into the intricate complexity of animal vocalizations, as well as into the evolutionary pressures and adaptive strategies that have shaped the diverse communication systems of the animal kingdom.This article is part of the theme issue, 'Nonlinear phenomena in vertebrate vocalizations: mechanisms and communicative functions'.
动物发声包含一系列丰富的复杂声音,这些声音呈现出非线性现象(NLP),几十年来一直吸引着研究人员。从鸟类的旋律歌声到海豚的咔哒声和口哨声,人们发现许多物种都会产生非线性发声,这为声音产生的潜在机制和适应性功能提供了宝贵的视角。通过利用振荡器理论和非线性动力学的原理,基于耦合振荡器的动物发声可以得到描述并方便地进行分类。我们回顾了自激振荡的基本要素以及不同的非线性现象是如何出现的。我们在振荡器理论的背景下讨论重要术语:吸引子类型、相空间、分岔和阿诺德舌图。通过对观察到的非线性现象和分岔图的比较分析,我们的研究回顾了非线性动力学工具如何能够洞察动物发声的复杂复杂性,以及塑造动物王国多样通信系统的进化压力和适应性策略。本文是主题为“脊椎动物发声中的非线性现象:机制与通信功能”的一部分。