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Distributed Bandpass Filtering and Signal Demodulation in Cortical Network Models

机译:皮质网络模型中的分布式带通滤波和信号解调

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Experimental recordings of cortical activity often exhibit narrowband oscillations, at various center frequencies ranging in the order of 1-200 Hz. Many neuronal mechanisms are known to give rise to oscillations, but here we focus on a population effect known as sparsely synchronised oscillations. In this effect, individual neurons in a cortical network fire irregularly at slow average spike rates (1-10 Hz), but the population spike rate oscillates at gamma frequencies (greater than 40 Hz) in response to spike bombardment from the thalamus. These cortical networks form recurrent (feedback) synapses. Here we describe a model of sparsely synchronized population oscillations using the language of feedback control engineering, where we treat spiking as noisy feedback. We show, using a biologically realistic model of synaptic current that includes a delayed response to inputs, that the collective behavior of the neurons in the network is like a distributed bandpass filter acting on the network inputs. Consequently, the population response has the character of narrowband random noise, and therefore has an envelope and instantaneous frequency with lowpass characteristics. Given that there exist biologically plausible neuronal mechanisms for demodulating the envelope and instantaneous frequency, we suggest there is potential for similar effects to be exploited in nanoscale electronics implementations of engineered communications receivers.
机译:皮质活动的实验记录通常呈现窄带振荡,在各种中心频率范围为1-200Hz。已知许多神经元机制产生振荡,但在这里我们专注于称为稀疏同步振荡的人口效果。在这种效果中,皮质网络中的个体神经元在缓慢平均尖峰速率(1-10Hz)处不规则地,但据响应从丘脑的尖峰轰击,群体尖峰率振荡在伽马频率(大于40 Hz)。这些皮质网络形成了复发(反馈)突触。在这里,我们使用反馈控制工程语言描述了一种稀疏同步的人口振荡模型,我们将尖峰视为嘈杂的反馈。我们示出了使用包括对输入的延迟响应的生物学现实的突触电流模型,网络中神经元的集体行为类似于作用在网络输入上的分布式带通滤波器。因此,人口响应具有窄带随机噪声的特征,因此具有具有低通特性的信封和瞬时频率。考虑到存在用于解调信封和瞬时频率的生物合理的神经元机制,我们建议在工程通信接收器的纳米级电子实现中利用类似效果的潜力。

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