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Running as fast as it can: How spiking dynamics form object groupings in the laminar circuits of visual cortex

机译:尽可能快地运行:尖峰动力学如何在视觉皮层的层状回路中形成对象分组

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摘要

How spiking neurons cooperate to control behavioral processes is a fundamental problem in computational neuroscience. Such cooperative dynamics are required during visual perception when spatially distributed image fragments are grouped into emergent boundary contours. Perceptual grouping is a challenge for spiking cells because its properties of collinear facilitation and analog sensitivity occur in response to binary spikes with irregular timing across many interacting cells. Some models have demonstrated spiking dynamics in recurrent laminar neocortical circuits, but not how perceptual grouping occurs. Other models have analyzed the fast speed of certain percepts in terms of a single feedforward sweep of activity, but cannot explain other percepts, such as illusory contours, wherein perceptual ambiguity can take hundreds of milliseconds to resolve by integrating multiple spikes over time. The current model reconciles fast feedforward with slower feedback processing, and binary spikes with analog network-level properties, in a laminar cortical network of spiking cells whose emergent properties quantitatively simulate parametric data from neurophysio-logical experiments, including the formation of illusoryrncontours; the structure of non-classical visual receptive fields; and self-synchronizing gamma oscillations. These laminar dynamics shed new light on how the brain resolves local informational ambiguities through the use of properly designed nonlinear feedback spiking networks which run as fast as they can, given the amount of uncertainty in the data that they process.
机译:尖峰神经元如何协作以控制行为过程是计算神经科学中的一个基本问题。当将空间分布的图像片段分组到紧急边界轮廓中时,在视觉感知期间需要这种协作动力学。感知分组对加标细胞是一个挑战,因为它的共线性促进特性和模拟灵敏度是响应于许多相互作用细胞中具有不规则定时的二进制峰值而出现的。一些模型已经证明了复发性层状新皮层回路中的尖峰动力学,但是没有表现出感知性分组的方式。其他模型已通过一次前馈活动扫描分析了某些感知的快速速度,但无法解释其他感知,例如虚幻的轮廓,其中随着时间的推移整合多个峰值,感知的歧义可能需要数百毫秒才能解决。当前模型在尖峰细胞的层状皮层网络中使快速前馈与较慢的反馈处理和具有模拟网络级特性的二进制峰值协调一致,其突现特性定量地模拟了来自神经生理学实验的参数数据,包括幻觉轮廓的形成;非经典视觉感受域的结构;和自同步伽玛振荡。这些层流动力学为大脑如何通过使用经过适当设计的非线性反馈尖峰网络解决本地信息歧义提供了新的思路,这些网络在给定处理数据的不确定性的前提下会尽可能快地运行。

著录项

  • 来源
    《Journal of Computational Neuroscience》 |2010年第2期|p.323-346|共24页
  • 作者单位

    Department of Cognitive and Neural Systems, Center for Adaptive Systems, Boston University, 677 Beacon Street, Boston, MA 02215, USA Center of Excellence for Learning in Education, Science, and Technology, Boston University, 677 Beacon Street, Boston, MA 02215, USA;

    Department of Cognitive and Neural Systems, Center for Adaptive Systems, Boston University, 677 Beacon Street, Boston, MA 02215, USA Center of Excellence for Learning in Education, Science, and Technology, Boston University, 677 Beacon Street, Boston, MA 02215, USA;

    Department of Cognitive and Neural Systems, Center for Adaptive Systems, Boston University, 677 Beacon Street, Boston, MA 02215, USA Center of Excellence for Learning in Education, Science, and Technology, Boston University, 677 Beacon Street, Boston, MA 02215, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    perceptual grouping; laminar cortical circuit; spiking neuron; visual cortex; gamma oscillations; illusory contour; bipole cell;

    机译:感知分组层状皮层回路尖刺神经元视觉皮层;伽马振荡;虚幻的轮廓双极细胞;

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