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Simulated power spectral density (PSD) of background electrocorticogram (ECoG)

机译:背景脑电图(ECoG)的模拟功率谱密度(PSD)

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The ECoG background activity of cerebral cortex in states of rest and slow wave sleep resembles broadband noise. The power spectral density (PSD) then may often conform to a power-law distribution: a straight line in coordinates of log power vs. log frequency. The exponent, x, of the distribution, 1/fx, ranges between 2 and 4. These findings are explained with a model of the neural source of the background activity in mutual excitation among pyramidal cells. The dendritic response of a population of interactive excitatory neurons to an impulse input is a rapid exponential rise and a slow exponential decay, which can be fitted with the sum of two exponential terms. When that function is convolved as the kernel with pulses from a Poisson process and summed, the resulting “brown” or “black noise conforms to the ECoG time series and the PSD in rest and sleep. The PSD slope is dependent on the rate of rise. The variation in the observed slope is attributed to variation in the level of the background activity that is homeostatically regulated by the refractory periods of the excitatory neurons. Departures in behavior from rest and sleep to action are accompanied by local peaks in the PSD, which manifest emergent nonrandom structure in the ECoG, and which prevent reliable estimation of the 1/fx exponents in active states. We conclude that the resting ECoG truly is low-dimensional noise, and that the resting state is an optimal starting point for defining and measuring both artifactual and physiological structures emergent in the activated ECoG.
机译:休息和慢波睡眠状态下大脑皮质的ECoG背景活性类似于宽带噪声。因此,功率谱密度(PSD)通常可能符合幂律分布:对数功率与对数频率坐标中的一条直线。 1 / fx 分布的指数x在2到4之间。这些发现可以通过锥体细胞之间相互激发的背景活动的神经源模型来解释。一组交互性兴奋性神经元对脉冲输入的树突响应是快速指数上升和慢速指数衰减,这可以与两个指数项之和拟合。当该函数与来自Poisson过程的脉冲作为内核卷积并求和时,所得的“棕色”或“黑噪声”符合ECoG时间序列以及休息和睡眠时的PSD。 PSD斜率取决于上升速率。观察到的斜率的变化归因于背景活动水平的变化,该背景活动水平由兴奋性神经元的不应期动态调节。行为从休息,睡眠到行动的偏离都伴随着PSD的局部峰,该峰在ECoG中表现出新兴的非随机结构,并妨碍了对活动状态下1 / fx 指数的可靠估计。我们得出的结论是,静止的ECoG实际上是低维噪声,并且静止状态是定义和测量激活的ECoG中出现的人为和生理结构的最佳起点。

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