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An Empirical Model for Reliable Spiking Activity

机译:可靠加息活动的经验模型

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摘要

Understanding a neuron's transfer function, which relates a neuron's inputs to its outputs, is essential for understanding the computational role of single neurons. Recently, statistical models, based on point processes and using generalized linear model (GLM) technology, have been widely applied to predict dynamic neuronal transfer functions. However, the standard version of these models fails to capture important features of neural activity, such as responses to stimuli that elicit highly reliable trial-to-trial spiking. Here, we consider a generalization of the usual GLM that incorporates nonlinearity by modeling reliable and nonreliable spikes as being generated by distinct stimulus features. We develop and apply these models to spike trains from olfactory bulb mitral cells recorded in vitro. We find that spike generation in these neurons is better modeled when reliable and unreliable spikes are considered separately and that this effect is most pronounced for neurons with a large number of both reliable and unreliable spikes.
机译:了解神经元的传递函数(将神经元的输入与其输出相关联)对于理解单个神经元的计算作用至关重要。最近,基于点过程并使用广义线性模型(GLM)技术的统计模型已被广泛应用于预测动态神经元传递函数。但是,这些模型的标准版本无法捕获神经活动的重要特征,例如对引起高度可靠的从试验到试验的尖峰刺激的响应。在这里,我们考虑了通常的GLM的一般化,该模型通过对可靠的和不可靠的尖峰进行建模来合并非线性,该尖峰是由不同的刺激特征生成的。我们开发并将这些模型应用于体外记录的嗅球二尖瓣细胞的尖峰训练。我们发现,当分别考虑可靠和不可靠的尖峰时,可以更好地模拟这些神经元中的尖峰生成,并且对于具有大量可靠和不可靠尖峰的神经元,这种影响最为明显。

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