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通过基于相关性的突触学习规则粗粒化获得的耦合皮质特征图的广义自旋模型。

Generalized spin models for coupled cortical feature maps obtained by coarse graining correlation based synaptic learning rules.

作者信息

Thomas Peter J, Cowan Jack D

机构信息

Department of Mathematics, Case Western Reserve University, Cleveland, OH, USA.

出版信息

J Math Biol. 2012 Dec;65(6-7):1149-86. doi: 10.1007/s00285-011-0484-7. Epub 2011 Nov 19.

DOI:10.1007/s00285-011-0484-7
PMID:22101498
Abstract

We derive generalized spin models for the development of feedforward cortical architecture from a Hebbian synaptic learning rule in a two layer neural network with nonlinear weight constraints. Our model takes into account the effects of lateral interactions in visual cortex combining local excitation and long range effective inhibition. Our approach allows the principled derivation of developmental rules for low-dimensional feature maps, starting from high-dimensional synaptic learning rules. We incorporate the effects of smooth nonlinear constraints on net synaptic weight projected from units in the thalamic layer (the fan-out) and on the net synaptic weight received by units in the cortical layer (the fan-in). These constraints naturally couple together multiple feature maps such as orientation preference and retinotopic organization. We give a detailed illustration of the method applied to the development of the orientation preference map as a special case, in addition to deriving a model for joint pattern formation in cortical maps of orientation preference, retinotopic location, and receptive field width. We show that the combination of Hebbian learning and center-surround cortical interaction naturally leads to an orientation map development model that is closely related to the XY magnetic lattice model from statistical physics. The results presented here provide justification for phenomenological models studied in Cowan and Friedman (Advances in neural information processing systems 3, 1991), Thomas and Cowan (Phys Rev Lett 92(18):e188101, 2004) and provide a developmental model realizing the synaptic weight constraints previously assumed in Thomas and Cowan (Math Med Biol 23(2):119-138, 2006).

摘要

我们从具有非线性权重约束的两层神经网络中的赫布突触学习规则出发,推导出用于前馈皮层结构发育的广义自旋模型。我们的模型考虑了视觉皮层中横向相互作用的影响,结合了局部兴奋和远距离有效抑制。我们的方法允许从高维突触学习规则出发,有原则地推导低维特征图的发育规则。我们纳入了丘脑层单元投射的净突触权重(扇出)和平皮层层单元接收的净突触权重(扇入)上平滑非线性约束的影响。这些约束自然地将多个特征图耦合在一起,如方向偏好和视网膜拓扑组织。除了推导方向偏好、视网膜拓扑位置和感受野宽度的皮层图中联合模式形成的模型外,我们还详细说明了该方法应用于方向偏好图发育这一特殊情况。我们表明,赫布学习与中心 - 周边皮层相互作用的结合自然地导致了一个与统计物理学中的XY磁晶格模型密切相关的方向图发育模型。这里给出的结果为考恩和弗里德曼(《神经信息处理系统进展3》,1991年)、托马斯和考恩(《物理评论快报》92(18):e188101,2004年)中研究的唯象模型提供了依据,并提供了一个实现托马斯和考恩(《数学生物医学》23(2):119 - 138,2006年)之前假设的突触权重约束的发育模型。

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