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首页> 外文期刊>Biological Cybernetics >Predicting single spikes and spike patterns with the Hindmarsh–Rose model
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Predicting single spikes and spike patterns with the Hindmarsh–Rose model

机译:用Hindmarsh–Rose模型预测单个峰值和峰值模式

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摘要

Most simple neuron models are only able to model traditional spiking behavior. As physiologists discover and classify different electrical phenotypes, computational neuroscientists become interested in using simple phenomenological models that can exhibit these different types of spiking patterns. The Hindmarsh–Rose model is a three-dimensional relaxation oscillator which can show both spiking and bursting patterns and has a chaotic regime. We test the predictive powers of the Hindmarsh–Rose model on two different test databases. We show that the Hindmarsh–Rose model can predict the spiking response of rat layer 5 neocortical pyramidal neurons on a stochastic input signal with a precision comparable to the best known spiking models. We also show that the Hindmarsh–Rose model can capture qualitatively the electrical footprints in a database of different types of neocortical interneurons. When the model parameters are fit from sub-threshold measurements only, the model still captures well the electrical phenotype, which suggests that the sub-threshold signals contain information about the firing patterns of the different neurons.
机译:大多数简单的神经元模型只能模拟传统的尖峰行为。随着生理学家发现和分类不同的电子表型,计算神经科学家开始对使用可以表现出这些不同类型的尖峰模式的简单现象学模型感兴趣。 Hindmarsh-Rose模型是一个三维弛豫振荡器,可以同时显示尖峰和爆发模式,并且具有混沌状态。我们在两个不同的测试数据库上测试了Hindmarsh-Rose模型的预测能力。我们显示,Hindmarsh-Rose模型可以预测大鼠第5层新皮质锥体神经元在随机输入信号上的峰值响应,其精度可与最著名的峰值模型相媲美。我们还显示,Hindmarsh-Rose模型可以定性地捕获不同类型的新皮层神经元的数据库中的电足迹。当仅从亚阈值测量中拟合模型参数时,模型仍可以很好地捕获电表型,这表明亚阈值信号包含有关不同神经元放电模式的信息。

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