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Measuring instantaneous frequency of local field potential oscillations using the Kalman smoother.

机译:使用卡尔曼平滑器测量局部场电势振荡的瞬时频率。

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摘要

Rhythmic local field potentials (LFPs) arise from coordinated neural activity. Inference of neural function based on the properties of brain rhythms remains a challenging data analysis problem. Algorithms that characterize non-stationary rhythms with high temporal and spectral resolution may be useful for interpreting LFP activity on the timescales in which they are generated. We propose a Kalman smoother based dynamic autoregressive model for tracking the instantaneous frequency (iFreq) and frequency modulation (FM) of noisy and non-stationary sinusoids such as those found in LFP data. We verify the performance of our algorithm using simulated data with broad spectral content, and demonstrate its application using real data recorded from behavioral learning experiments. In analyses of ripple oscillations (100-250Hz) recorded from the rodent hippocampus, our algorithm identified novel repetitive, short timescale frequency dynamics. Our results suggest that iFreq and FM may be useful measures for the quantification of small timescale LFP dynamics.
机译:有节奏的局部场电位(LFP)来自协调的神经活动。基于脑节律的特性推断神经功能仍然是一个具有挑战性的数据分析问题。表征具有高时间和频谱分辨率的非平稳节律的算法可能对解释LFP活动在其产生的时间尺度上有用。我们提出了一种基于卡尔曼平滑器的动态自回归模型,用于跟踪嘈杂和非平稳正弦波(例如在LFP数据中发现的正弦波)的瞬时频率(iFreq)和频率调制(FM)。我们使用具有广泛频谱内容的模拟数据来验证我们算法的性能,并使用从行为学习实验中记录的真实数据来证明其应用。在对啮齿类动物海马记录的纹波振荡(100-250Hz)的分析中,我们的算法确定了新颖的重复性,短时标频率动态特性。我们的结果表明,iFreq和FM可能是量化小规模LFP动态的有用方法。

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