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Multifractal roots of suprapostural dexterity

机译:超自推弱的多分泌根

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Visually guided postural control emerges in response to task constraints. Task constraints generate physiological fluctuations that foster the exploration of available sensory information at many scales. Temporally correlated fluctuations quantified using fractal and multifractal metrics have been shown to carry perceptual information across the body. The risk of temporally correlated fluctuations is that stable sway appears to depend on a healthy balance of standard deviation (SD): too much or too little SD entails destabilization of posture. This study presses on the visual guidance of posture by prompting participants to quietly stand and fixate at distances within, less than, and beyond comfortable viewing distance. Manipulations of the visual precision demands associated with fixating nearer and farther than comfortable viewing distance reveals an adaptive relationship between SD and temporal correlations in postural fluctuations. Changing the viewing distance of the fixation target shows that increases in temporal correlations and SD predict subsequent reductions in each other. These findings indicate that the balance of SD within stable bounds may depend on a tendency for temporal correlations to self-correct across time. Notably, these relationships became stronger with greater distance from the most comfortable viewing and reaching distance, suggesting that this self-correcting relationship allows the visual layout to press the postural system into a poise for engaging with objects and events. Incorporating multifractal analysis showed that all effects attributable to monofractal evidence were better attributed to multifractal evidence of nonlinear interactions across scales. These results offer a glimpse of how current nonlinear dynamical models of self-correction may play out in biological goal-oriented behavior. We interpret these findings as part of the growing evidence that multifractal nonlinearity is a modeling strategy that resonates strongly with ecological psychological approaches to perception and action.
机译:视觉引导的姿势控制是对任务限制的反应。任务限制会产生生理波动,促进在多个尺度上探索可用的感官信息。使用分形和多重分形度量量化的时间相关波动已被证明在全身携带感知信息。时间相关波动的风险在于,稳定的摇摆似乎取决于标准偏差(SD)的健康平衡:SD太多或太少都会导致姿势不稳定。这项研究通过促使参与者安静地站立并注视在舒适视距之内、小于或超过舒适视距的距离,来加强姿势的视觉引导。对视觉精度要求的操作与近距离和远距离的注视有关,而不是舒适的观察距离,揭示了姿势波动中SD和时间相关性之间的适应性关系。改变注视目标的观察距离表明,时间相关性和SD的增加预示着彼此随后的减少。这些发现表明,SD在稳定范围内的平衡可能取决于时间相关性跨时间自我校正的趋势。值得注意的是,随着距离最舒适的观看距离和到达距离的增加,这些关系变得更强,这表明这种自我纠正关系允许视觉布局将姿势系统压入与物体和事件接触的平衡状态。结合多重分形分析表明,单分形证据的所有效应都更好地归因于跨尺度非线性相互作用的多重分形证据。这些结果让我们得以一瞥当前的自我校正非线性动力学模型如何在生物目标导向行为中发挥作用。我们将这些发现解释为越来越多的证据的一部分,即多重分形非线性是一种建模策略,与感知和行为的生态心理学方法产生强烈共鸣。

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