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纠正由于有限数量的尖峰而导致的尖峰场相干估计器的偏差。

Correcting the bias of spike field coherence estimators due to a finite number of spikes.

机构信息

School of Biomedical Engineering, Science and Health Systems, Drexel University, Philadelphia, Pennsylvania 19104, USA.

出版信息

J Neurophysiol. 2010 Jul;104(1):548-58. doi: 10.1152/jn.00610.2009. Epub 2010 May 19.

Abstract

The coherence between oscillatory activity in local field potentials (LFPs) and single neuron action potentials, or spikes, has been suggested as a neural substrate for the representation of information. The power spectrum of a spike-triggered average (STA) is commonly used to estimate spike field coherence (SFC). However, when a finite number of spikes is used to construct the STA, the coherence estimator is biased. We introduce here a correction for the bias imposed by the limited number of spikes available in experimental conditions. In addition, we present an alternative method for estimating SFC from an STA by using a filter bank approach. This method is shown to be more appropriate in some analyses, such as comparing coherence across frequency bands. The proposed bias correction is a linear transformation derived from an idealized model of spike-field interaction but is shown to hold in more realistic settings. Uncorrected and corrected SFC estimates from both estimation methods are compared across multiple simulated spike-field models and experimentally collected data. The bias correction was shown to reduce the bias of the estimators, but add variance. However, the corrected estimates had a reduced or unchanged mean squared error in the majority of conditions evaluated. The bias correction provides an effective way to reduce bias in an SFC estimator without increasing the mean squared error.

摘要

局部场电位(LFPs)和单个神经元动作电位或尖峰之间的振荡活动之间的相干性被认为是信息表示的神经基础。 尖峰触发平均(STA)的功率谱通常用于估计尖峰场相干性(SFC)。 然而,当使用有限数量的尖峰来构建 STA 时,相干性估计器会产生偏差。 我们在这里介绍了一种校正方法,用于校正实验条件下可用的有限数量的尖峰所产生的偏差。 此外,我们还提出了一种使用滤波器组方法从 STA 估计 SFC 的替代方法。 该方法在某些分析中更为合适,例如比较频带之间的相干性。 所提出的偏差校正方法是从尖峰-场相互作用的理想化模型导出的线性变换,但在更现实的情况下也适用。 对多个模拟的尖峰-场模型和实验收集的数据进行了比较,比较了两种估计方法的未校正和校正的 SFC 估计值。 偏差校正降低了估计器的偏差,但增加了方差。 然而,在评估的大多数条件下,校正后的估计值的均方误差降低或保持不变。 偏差校正为减少 SFC 估计器中的偏差而不增加均方误差提供了一种有效方法。

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