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Neural Variability and Sampling-Based Probabilistic Representations in the Visual Cortex

机译:视觉皮层中的神经变异性和基于采样的概率表示

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摘要

Neural responses in the visual cortex are variable, and there is now an abundance of data characterizing how the magnitude and structure of this variability depends on the stimulus. Current theories of cortical computation fail to account for these data; they either ignore variability altogether or only model its unstructured Poisson-like aspects. We develop a theory in which the cortex performs probabilistic inference such that population activity patterns represent statistical samples from the inferred probability distribution. Our main prediction is that perceptual uncertainty is directly encoded by the variability, rather than the average, of cortical responses. Through direct comparisons to previously published data as well as original data analyses, we show that a sampling-based probabilistic representation accounts for the structure of noise, signal, and spontaneous response variability and correlations in the primary visual cortex. These results suggest a novel role for neural variability in cortical dynamics and computations.
机译:视觉皮层中的神经反应是可变的,并且现在有大量的数据来表征这种可变性的大小和结构如何取决于刺激。当前的皮层计算理论无法解释这些数据。他们要么完全忽略了可变性,要么仅对其非结构化的类似于Poisson的方面建模。我们开发了一种理论,其中皮层执行概率推断,以使种群活动模式代表根据推断的概率分布得出的统计样本。我们的主要预测是,感知不确定性直接由皮层反应的变异性而非平均值来编码。通过与以前发布的数据以及原始数据进行的直接比较,我们表明基于采样的概率表示解决了主要视觉皮层中噪声,信号以及自发响应变异性和相关性的结构。这些结果表明神经变异性在皮层动力学和计算中的新作用。

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