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Dimensionalh-reduced visual cortical network model predicts network response and connects system- and cellular-level descriptions

机译:降维的视觉皮层网络模型可预测网络响应并连接系统级和蜂窝级描述

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摘要

Systems-level neurophysiological data reveal coherent activity that is distributed across large regions of cortex. This activity is often thought of as an emergent property of recurrently connected networks. The fact that this activity is coherent means that populations of neurons may be thought of as the carriers of information, not individual neurons. Therefore, systems-level descriptions of functional activity in the network often find their simplest form as combinations of the underlying neuronal variables. In this paper, we provide a general framework for constructing low-dimensional dynamical systems that capture the essential systems-level information contained in large-scale networks of neurons. We demonstrate that these dimensionally-reduced models are capable of predicting the response to previously un-encountered input and that the coupling between systems-level variables can be used to reconstruct cellular-level functional connectivities. Furthermore, we show that these models may be constructed even in the absence of complete information about the underlying network.
机译:系统级的神经生理学数据揭示了相干活动,该活动分布在整个皮质区域。通常将此活动视为循环连接网络的新兴属性。这种活动是连贯的这一事实意味着,神经元群体可以被认为是信息的载体,而不是单个神经元。因此,网络中功能活动的系统级描述通常会发现其最简单的形式是基础神经元变量的组合。在本文中,我们提供了构建低维动力系统的通用框架,该系统捕获了大规模神经元网络中包含的基本系统级信息。我们证明,这些尺寸减小的模型能够预测对先前未遇到的输入的响应,并且系统级变量之间的耦合可用于重构细胞级功能连接性。此外,我们表明即使没有有关基础网络的完整信息,也可以构建这些模型。

著录项

  • 来源
    《Journal of Computational Neuroscience》 |2010年第1期|91-106|共16页
  • 作者单位

    Center for Bioinformatics, National Laboratory of Protein Engineering and Plant Genetics Engineering, College of Life Sciences, Peking University, Number 5 Summer Palace Road, Beijing 100871, People's Republic of China Center for Applied Mathematics and Statistics, New Jersey Institute of Technology, 323 Martin Luther King, Jr., Blvd, Newark, NJ 07102, USA;

    Department of Mathematics and Faculty of Engineering, University of Georgia, 500 D.W. Brooks Drive, Athens, GA 30605, USA;

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

    primary visual cortex; low-dimensional characterization; network connectivity;

    机译:初级视觉皮层低维表征网络连接;

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