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Analysis and modelling of variability and covariability of population spike trains across multiple time scales

机译:跨多个时间尺度的人口峰值序列的变异性和协变性分析和建模

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As multi-electrode and imaging technology begin to provide us with simultaneous recordings of large neuronal populations, new methods for modelling such data must also be developed. We present a model of responses to repeated trials of a sensory stimulus based on thresholded Gaussian processes that allows for analysis and modelling of variability and covariability of population spike trains across multiple time scales. The model framework can be used to specify the values of many different variability measures including spike timing precision across trials, coefficient of variation of the interspike interval distribution, and Fano factor of spike counts for individual neurons, as well as signal and noise correlations and correlations of spike counts across multiple neurons. Using both simulated data and data from different stages of the mammalian auditory pathway, we demonstrate the range of possible independent manipulations of different variability measures, and explore how this range depends on the sensory stimulus. The model provides a powerful framework for the study of experimental and surrogate data and for analyzing dependencies between different statistical properties of neuronal populations.
机译:随着多电极和成像技术开始为我们提供大型神经元群体的同步记录,还必须开发用于建模此类数据的新方法。我们提出了一种基于阈值高斯过程的重复刺激感官刺激试验的响应模型,该模型可以分析和模拟跨多个时间尺度的种群高峰序列的变异性和协变性。该模型框架可用于指定许多不同的可变性度量的值,包括跨试验的尖峰定时精度,尖峰间隔分布的变异系数,单个神经元的尖峰计数的Fano因子,以及信号和噪声的相关性和相关性。多个神经元的峰值计数。使用模拟数据和来自哺乳动物听觉途径不同阶段的数据,我们演示了对不同变异性度量进行可能的独立操纵的范围,并探讨了该范围如何取决于感觉刺激。该模型为研究实验数据和替代数据以及分析神经元群体不同统计特性之间的依赖性提供了强大的框架。

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