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High-dimensional geometry of population responses in visual cortex

机译:Visual Cortex中群体响应的高维几何

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摘要

A neuronal population encodes information most efficiently when its stimulus responses are high-dimensional and uncorrelated, and most robustly when they are lower-dimensional and correlated. Here we analysed the dimensionality of the encoding of natural images by large populations of neurons in the visual cortex of awake mice. The evoked population activity was high-dimensional, and correlations obeyed an unexpected power law: the nth principal component variance scaled as 1. This scaling was not inherited from the power law spectrum of natural images, because it persisted after stimulus whitening. We proved mathematically that if the variance spectrum was to decay more slowly then the population code could not be smooth, allowing small changes in input to dominate population activity. The theory also predicts larger power-law exponents for lower-dimensional stimulus ensembles, which we validated experimentally. These results suggest that coding smoothness may represent a fundamental constraint that determines correlations in neural population codes.
机译:当其刺激响应是高维和不相关的时,神经元群体最有效地编码信息,并且当它们较低尺寸和相关时最强大。在这里,我们通过大量的神经元在唤醒小鼠的视觉皮层中分析了自然图像编码的维度。诱发人口活动是高维的,相关性遵守意外的权力法:第n个主成分方差缩放为1 / n。这种缩放不是从自然图像的电力法谱继承,因为它在刺激美白后持续存在。我们在数学上证明,如果方差谱是衰减更慢的,那么人口代码不能平滑,允许输入的小变化来支配人口活动。该理论还预测了我们通过实验验证的低维刺激集合的较大的权力指数。这些结果表明,编码平滑度可以代表基本约束,确定神经群体代码中的相关性。

著录项

  • 来源
    《Nature》 |2019年第7765期|361-365|共5页
  • 作者单位

    HHMI Janelia Res Campus Ashburn VA 20147 USA|UCL UCL Gatsby Computat Neurosci Unit London England;

    HHMI Janelia Res Campus Ashburn VA 20147 USA|UCL UCL Inst Neurol London England;

    UCL UCL Inst Neurol London England|Univ Washington Dept Biol Struct Seattle WA 98195 USA;

    UCL UCL Inst Ophthalmol London England;

    UCL UCL Inst Neurol London England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:15:19

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