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Collective Activity of Many Bistable Assemblies Reproduces Characteristic Dynamics of Multistable Perception

机译:许多双稳态组件的集体活动再现了多稳态感知的特征动力学

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摘要

The timing of perceptual decisions depends on both deterministic and stochastic factors, as the gradual accumulation of sensory evidence (deterministic) is contaminated by sensory and/or internal noise (stochastic). When human observers view multistable visual displays, successive episodes of stochastic accumulation culminate in repeated reversals of visual appearance. Treating reversal timing as a “first-passage time” problem, we ask how the observed timing densities constrain the underlying stochastic accumulation. Importantly, mean reversal times (i.e., deterministic factors) differ enormously between displays/observers/stimulation levels, whereas the variance and skewness of reversal times (i.e., stochastic factors) keep characteristic proportions of the mean. What sort of stochastic process could reproduce this highly consistent “scaling property?” Here we show that the collective activity of a finite population of bistable units (i.e., a generalized Ehrenfest process) quantitatively reproduces all aspects of the scaling property of multistable phenomena, in contrast to other processes under consideration (Poisson, Wiener, or Ornstein-Uhlenbeck process). The postulated units express the spontaneous dynamics of attractor assemblies transitioning between distinct activity states. Plausible candidates are cortical columns, or clusters of columns, as they are preferentially connected and spontaneously explore a restricted repertoire of activity states. Our findings suggests that perceptual representations are granular, probabilistic, and operate far from equilibrium, thereby offering a suitable substrate for statistical inference.>SIGNIFICANCE STATEMENT Spontaneous reversals of high-level perception, so-called multistable perception, conform to highly consistent and characteristic statistics, constraining plausible neural representations. We show that the observed perceptual dynamics would be reproduced quantitatively by a finite population of distinct neural assemblies, each with locally bistable activity, operating far from the collective equilibrium (generalized Ehrenfest process). Such a representation would be consistent with the intrinsic stochastic dynamics of neocortical activity, which is dominated by preferentially connected assemblies, such as cortical columns or clusters of columns. We predict that local neuron assemblies will express bistable dynamics, with spontaneous active-inactive transitions, whenever they contribute to high-level perception.
机译:感知决策的时机取决于确定性因素和随机性因素,因为感觉证据(确定性)的逐步积累受到感觉和/或内部噪声(随机性)的污染。当人类观察者观看多稳态视觉显示时,随机积累的连续事件最终导致视觉外观的反复反转。将逆转时序视为“首次通过时间”问题,我们问所观察到的时序密度如何约束潜在的随机积累。重要的是,显示/观察者/刺激水平之间的平均反转时间(即确定性因素)差异很大,而反转时间(即随机因素)的方差和偏度保持平均值的特征比例。什么样的随机过程可以重现这种高度一致的“缩放特性”?在这里,我们表明,与考虑中的其他过程(泊松,维纳或奥恩斯坦-乌伦贝克)相比,有限数量的双稳态单元的集体活动(即广义的埃伦菲斯特过程)定量地再现了多稳态现象的定标性质的所有方面。处理)。假定的单位表示吸引子组件在不同活动状态之间转换的自发动力学。可能的候选对象是皮质柱或柱簇,因为它们优先连接并自发探索活动状态的受限组成部分。我们的发现表明,知觉表示是粒度,概率性的,并且远非均衡运行,因此为统计推断提供了合适的基础。>显着性陈述自发逆转了高级感知,即所谓的多稳态感知,符合高度一致且特征丰富的统计数据,从而限制了可能的神经表示形式。我们表明,观察到的知觉动力学将通过有限的不同神经装配体的数量来定量地再现,每个神经装配体具有局部双稳态活性,并且远离集体平衡(广义的Ehrenfest过程)。这样的表示将与新皮层活动的内在随机动力学相一致,新皮层活动的内在随机动力学由优先连接的组件(例如皮层柱或柱簇)主导。我们预测,只要它们有助于高级感知,局部神经元程序集就会表现出具有自发的主动-非活动过渡的双稳态动力学。

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