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Multifractal evidence of nonlinear interactions stabilizing posture for phasmids in windy conditions: A reanalysis of insect postural-sway data

机译:多角形证据表明在风条件下,毒粒的非线性相互作用稳定了姿态:对昆虫姿势摇摆数据的重新分析

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摘要

The present work is a reanalysis of prior work documenting postural sway in phasmids (i.e., “stick insects”) []. The prior work pursued the possibility that postural sway was an evolutionary adaptation supporting motion camouflage to avoid the attention of predators. For instance, swaying along with leaves blown by the wind might reduce the likelihood of standing out to a predator. The present work addresses the alternative—but by no means conflicting and perhaps more explanatory—proposal that phasmid postural sway carries evidence of the tensegrity-like structures allowing postural stabilization under wind-like stimulation. Tensegrity structures are prestressed architectures embodying nonlinear interactions across scales of space and time that provide context-sensitive responses faster than neural tissue can support. Multifractal modeling of the postural-displacement series initially recorded in [] offers a metric equally effective for quantifying complexity of phasmid postural sway under wind stimulation as for quantifying complexity of human postural sway [–]. Furthermore, multifractal modeling offers a means to demonstrate empirically the nonlinear interactions across space and time scales in body-wide coordination that tensegrity-based hypotheses predict. Specifically, multifractal modeling allows diagnosing the strength and direction of nonlinear interactions across time scale as the difference between multifractal estimates for the original postural-displacement series and for a sample of best-fitting linear models of the series. The reduction of postural sway directly following the application of wind stimulus appears as a significant decrease in the multifractal structure for original postural-displacement series as compared to best-fitting linear models of those series. This decrease indicates the capacity for nonlinear interactions across time scale to constrict variability, which is an aspect of nonlinear dynamics often overshadowed by the possibility that nonlinearity can produce more variability. This work offers the longer-range opportunity that multifractal modeling could provide a common language within which to coordinate behavioral sciences across a wide range of species.
机译:目前的工作是对先前工作的重新分析,该工作记录了相位变化(即“粘虫”)[]。先前的工作寻求姿势摇摆是一种进化适应性的可能性,它支持运动伪装以避免掠食者的注意。例如,随着风吹动的叶子摇曳,可能会减少站在捕食者面前的可能性。目前的工作提出了一种替代方案,但绝非是矛盾的,也许不是更具解释性的建议,即,相扑姿势摆动带有证据表明类似张力的结构可以在风的刺激下使姿势稳定。张力结构是预应力结构,体现了跨时空尺度的非线性相互作用,其提供的上下文相关响应的速度比神经组织所能支持的更快。最初记录在[]中的姿势位移系列的多重分形模型提供了一种度量,该度量对于量化风刺激下的相位姿势晃动的复杂性与量化人类姿势晃动的复杂性[–]同样有效。此外,多重分形建模提供了一种手段,可以以经验方式证明基于张力的假设所预测的整个身体协调中跨时空尺度的非线性相互作用。具体来说,多重分形建模可以诊断跨时间尺度的非线性相互作用的强度和方向,这是原始姿势位移系列和该系列的最佳拟合线性模型样本的多重分形估计之间的差异。与那些序列的最佳拟合线性模型相比,在施加风刺激后直接减少姿势摇摆似乎是原始姿势位移系列的多重分形结构的显着减少。这种减少表明跨时间标度的非线性交互作用可压缩可变性的能力,这是非线性动力学的一个方面,常常被非线性可能产生更多可变性的可能性所掩盖。这项工作为多重分形建模提供了一种通用语言,可以用来协调广泛物种的行为科学,提供了更广泛的机会。

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