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使用选择概率估计神经元反应与行为之间的试验间相关性时的潜在混杂因素。

Potential confounds in estimating trial-to-trial correlations between neuronal response and behavior using choice probabilities.

机构信息

Department of Neurobiology, Harvard Medical School, Boston, MA, USA.

出版信息

J Neurophysiol. 2012 Dec;108(12):3403-15. doi: 10.1152/jn.00471.2012. Epub 2012 Sep 19.

Abstract

Correlations between trial-to-trial fluctuations in the responses of individual sensory neurons and perceptual reports, commonly quantified with choice probability (CP), have been widely used as an important tool for assessing the contributions of neurons to behavior. These correlations are usually weak and often require a large number of trials for a reliable estimate. Therefore, working with measures such as CP warrants care in data analysis as well as rigorous controls during data collection. Here we identify potential confounds that can arise in data analysis and lead to biased estimates of CP, and suggest methods to avoid the bias. In particular, we show that the common practice of combining neuronal responses across different stimulus conditions with z-score normalization can result in an underestimation of CP when the ratio of the numbers of trials for the two behavioral response categories differs across the stimulus conditions. We also discuss the effects of using variable time intervals for quantifying neuronal response on CP measurements. Finally, we demonstrate that serious artifacts can arise in reaction time tasks that use varying measurement intervals if the mean neuronal response and mean behavioral performance vary over time within trials. To emphasize the importance of addressing these concerns in neurophysiological data, we present a set of data collected from V1 cells in macaque monkeys while the animals performed a detection task.

摘要

个体感觉神经元反应的试验间波动与知觉报告之间的相关性,通常用选择概率(CP)来定量,已被广泛用作评估神经元对行为贡献的重要工具。这些相关性通常较弱,通常需要大量试验才能进行可靠的估计。因此,使用 CP 等指标进行工作需要在数据分析中小心谨慎,并在数据收集过程中进行严格的控制。在这里,我们确定了可能在数据分析中出现并导致 CP 估计偏差的潜在混杂因素,并提出了避免偏差的方法。特别是,我们表明,当两种行为反应类别的试验数量之比在刺激条件之间不同时,将不同刺激条件下的神经元反应进行 z 分数归一化组合的常见做法可能导致 CP 的低估。我们还讨论了在量化神经元反应时使用可变时间间隔对 CP 测量的影响。最后,我们证明如果在试验内时间内,神经元的平均反应和平均行为表现随时间变化,那么在使用变化测量间隔的反应时间任务中可能会出现严重的伪影。为了强调在神经生理学数据中解决这些问题的重要性,我们展示了一组从猕猴 V1 细胞中收集的数据,这些细胞在动物执行检测任务时被记录。

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