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An optimization approach to understanding structure-function relationships in the visual cortex

机译:一种了解视觉皮层中结构与功能关系的优化方法

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The relationship between structure and function is of central importance in neuroscience. Computational modeling techniques can play a crucial role in exploring this relationship. Neuroscientists have revealed an interesting patterning in the connectivity of visual cortical areas, where the receptive field sizes for feed-forward, lateral and feedback connections are monotonically increasing and these roughly double. In this paper, we use a computational modeling approach to understand the behavior of the visual system, and show that this observed connectivity pattern can be explained via a maximization of functional metrics based on separation and segmentation accuracies. We use an optimization function based on sparse spatiotemporal encoding and faithfulness of representation to derive the dynamical behavior of a multi-layer network of oscillatory units. The network behavior can be quantified in terms of its ability to separate and segment mixtures of inputs. We vary the topological connectivity between different layers of the simulated visual network and study its effect on performance in terms of separation and segmentation accuracy. We demonstrate that the best performance occurs when the topology of the simulated system is similar to that in the primate visual cortex where the receptive field sizes of feedforward, lateral and feedback connections are monotonically increasing. This explanation of the functional significance of topological connectivity provides a new perspective for the understanding of cortical function.
机译:结构与功能之间的关系在神经科学中至关重要。计算建模技术可以在探索这种关系中发挥关键作用。神经科学家已经揭示了视觉皮层区域连通性中的一种有趣模式,其中前馈,横向和反馈连接的感受野大小单调增加,并且大约增加了一倍。在本文中,我们使用计算建模方法来了解视觉系统的行为,并表明可以通过基于分离和分段精度的功能指标最大化来解释这种观察到的连通性模式。我们使用基于时空稀疏编码和表示的忠实度的优化函数来导出振荡单元多层网络的动力学行为。网络行为可以根据其分离和分割输入混合的能力来量化。我们改变了模拟视觉网络不同层之间的拓扑连通性,并根据分离和分段精度研究了其对性能的影响。我们证明,当模拟系统的拓扑与灵长类动物视觉皮层中的前馈,横向和反馈连接的接收场大小单调增加时,最佳性能会发生。对拓扑连接功能意义的解释为了解皮层功能提供了新的视角。

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