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Duality between the rate code and the synchronous code in neural networks with chaotic inputs

机译:作者:张莹莹,王莹,王莹

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摘要

It has been debated whether the brain uses the temporal spike coding or the rate coding as its dominant mode. In this report, we examine a two-layered stochastic neural network model receiving chaotic inputs generated from the Chen's attractor. With low noise, the neurons in the downstream layer fire synchronously, and intervals of synchronous firing robustly encode the signal. With moderate amount of noise, however, the neurons fire asynchronously to encode external stimuli more accurately in terms of time resolution. A possible role of noise in the brain distinct from stochastic resonance, coherence resonance, and deterministic chaos is indicated. This duality of coding also appears when other model parameters are modulated. In real situations animals may use the appropriate coding by switching from one coding scheme to another.
机译:它已经争论了大脑是否使用时间尖峰编码或速率编码作为其主导模式。 在本报告中,我们检查了从陈的吸引子产生的混沌输入的两层随机神经网络模型。 噪声低,下游层在下游层的神经元同步,并且同步射击的间隔强大地编码信号。 然而,具有适度的噪声,神经元在时间分辨率方面异步地以更准确地编码外部刺激。 噪声在脑中不同于随机共振,相干共振和确定性混乱的可能作用。 当调制其他模型参数时,也会出现这种编码的这种二元性。 在实际情况下,动物可以通过从一个编码方案切换到另一个编码方案来使用适当的编码。

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