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尖峰时间依赖性可塑性导致神经网络中的γ波段响应。

Spike-timing-dependent plasticity leads to gamma band responses in a neural network.

作者信息

Fründ Ingo, Ohl Frank W, Herrmann Christoph S

机构信息

Bernstein Group for Computational Neuroscience, Magdeburg, Germany.

出版信息

Biol Cybern. 2009 Sep;101(3):227-40. doi: 10.1007/s00422-009-0332-7. Epub 2009 Sep 30.

Abstract

Early gamma band responses of the human electroencephalogram have been identified as an early interface linking top-down and bottom-up processing. This was based on findings that observed strong sensitivity of this signal to stimulus size and at the same time, to processes of attention and memory. Here, we simulate these findings in a simple random network of biologically plausible spiking neurons. During a learning phase, different stimuli were presented to the network and the synaptic connections were modified according to a spike-timing-dependent plasticity learning rule. In a subsequent test phase, we stimulated the network with (i) patterns of different sizes to simulate bottom-up effects and (ii) with patterns that were or were not presented during the learning phase. The network displayed qualitatively similar behavior as early gamma band responses measured from the scalp of human subjects: there was a general increase in response strength with increasing stimulus size and stronger responses for learned stimuli. We demonstrated that within one neural architecture early gamma band responses can be modulated both by bottom-up factors and by basal learning mechanisms mediated via spike-timing-dependent plasticity.

摘要

人类脑电图的早期伽马波段反应已被确定为连接自上而下和自下而上处理的早期界面。这是基于以下发现:该信号对刺激大小以及注意力和记忆过程具有很强的敏感性。在此,我们在一个由具有生物合理性的脉冲神经元组成的简单随机网络中模拟这些发现。在学习阶段,向网络呈现不同的刺激,并根据依赖于脉冲时间的可塑性学习规则修改突触连接。在随后的测试阶段,我们用(i)不同大小的模式刺激网络以模拟自下而上的效应,以及(ii)用在学习阶段呈现或未呈现的模式刺激网络。该网络表现出与从人类受试者头皮测量的早期伽马波段反应在性质上相似的行为:随着刺激大小的增加,反应强度普遍增加,并且对学习过的刺激反应更强。我们证明,在一种神经架构内,早期伽马波段反应可以由自下而上的因素以及通过依赖于脉冲时间的可塑性介导的基础学习机制进行调节。

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