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CHARACTERIZING UNOBSERVED FACTORS DRIVING LOCAL FIELD POTENTIAL DYNAMICS UNDERLYING A TIME-VARYING SPIKE GENERATION

机译:表征随时间变化的峰值驱动局部场势动力学的不可观测因素

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摘要

Neural spiking responses are generated by both extrinsic covariates such as sensory stimuli and intrinsic covariates such as those representing the state of the system. Although the external covariates can be directly controlled or measured; the internal factors are hard, if not impossible, to control or even observe. This study provides a statistical framework that enables characterization of the unobserved factors controlling neuronal response variability induced by behavior, with the model parameters fitted directly to real spiking data. We apply this model to simultaneously recorded spiking and local field potential activities of visual cortical neurons, and show its ability to encode and decode time-varying visual information, as well as to capture the dynamic response characteristics underpinning those computations.
机译:神经尖峰响应是由外部协变量(例如感觉刺激)和内部协变量(例如代表系统状态的变量)生成的。尽管外部协变量可以直接控制或测量;内部因素很难甚至无法控制。这项研究提供了一个统计框架,该模型能够表征控制行为引起的神经元反应变异性的未观察因素,并将模型参数直接拟合至实际峰值数据。我们将此模型应用于同时记录的视觉皮层神经元的尖峰和局部场电位活动,并显示其编码和解码随时间变化的视觉信息的能力,以及捕获支撑这些计算的动态响应特征的能力。

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