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Multi-stable perception balances stability and sensitivity

机译:多稳态感知平衡了稳定性和敏感性

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摘要

We report that multi-stable perception operates in a consistent, dynamical regime, balancing the conflicting goals of stability and sensitivity. When a multi-stable visual display is viewed continuously, its phenomenal appearance reverses spontaneously at irregular intervals. We characterized the perceptual dynamics of individual observers in terms of four statistical measures: the distribution of dominance times (mean and variance) and the novel, subtle dependence on prior history (correlation and time-constant). The dynamics of multi-stable perception is known to reflect several stabilizing and destabilizing factors. Phenomenologically, its main aspects are captured by a simplistic computational model with competition, adaptation, and noise. We identified small parameter volumes (~3% of the possible volume) in which the model reproduced both dominance distribution and history-dependence of each observer. For 21 of 24 data sets, the identified volumes clustered tightly (~15% of the possible volume), revealing a consistent “operating regime” of multi-stable perception. The “operating regime” turned out to be marginally stable or, equivalently, near the brink of an oscillatory instability. The chance probability of the observed clustering was <0.02. To understand the functional significance of this empirical “operating regime,” we compared it to the theoretical “sweet spot” of the model. We computed this “sweet spot” as the intersection of the parameter volumes in which the model produced stable perceptual outcomes and in which it was sensitive to input modulations. Remarkably, the empirical “operating regime” proved to be largely coextensive with the theoretical “sweet spot.” This demonstrated that perceptual dynamics was not merely consistent but also functionally optimized (in that it balances stability with sensitivity). Our results imply that multi-stable perception is not a laboratory curiosity, but reflects a functional optimization of perceptual dynamics for visual inference.
机译:我们报告说,多稳态感知在一个一致的动态机制下运行,平衡了稳定性和敏感性之间相互矛盾的目标。当连续观看多稳态视觉显示器时,其现象外观以不规则的间隔自发地反转。我们通过四种统计量度来表征各个观察者的感知动态:优势时间(均值和方差)的分布以及对先验历史的新颖,微妙的依赖(相关性和时间常数)。已知多稳态知觉的动力学反映了一些稳定和不稳定因素。从现象学上讲,它的主要方面是由具有竞争性,适应性和噪声性的简化计算模型捕获的。我们确定了较小的参数量(可能量的〜3%),其中该模型重现了每个观察者的优势分布和历史依赖性。在24个数据集中的21个数据中,已识别的数据量紧密聚集(约占可能数据量的15%),揭示了一个稳定的多稳态感知“操作机制”。事实证明,“运行机制”是稳定的,或者相当接近振荡不稳定的边缘。观察到的聚类的机会概率小于0.02。为了了解这种经验性“运作机制”的功能重要性,我们将其与模型的理论“最佳位置”进行了比较。我们将此“最佳点”计算为参数量的交集,模型在模型中产生稳定的感知结果,并且对输入调制敏感。值得注意的是,经验主义的“运作机制”在很大程度上与理论上的“最佳点”共同延伸。这证明了知觉动力学不仅是一致的,而且在功能上得到了优化(因为它在稳定性和灵敏度之间取得了平衡)。我们的结果表明,多稳态感知不是实验室的好奇心,而是反映了视觉推理功能的功能性优化。

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