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MAD saccade: statistically robust saccade threshold estimation via the median absolute deviation

机译:MAD SACCADE:通过中位绝对偏差统计上稳健的扫描阈值估计

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摘要

Saccade detection is a critical step in the analysis of gaze data. A common method for saccade detection is to use a simple threshold for velocity or acceleration values, which can be estimated from the data using the mean and standard deviation. However, this method has the downside of being influenced by the very signal it is trying to detect, the outlying velocities or accelerations that occur during saccades. We propose instead to use the median absolute deviation (MAD), a robust estimator of dispersion that is not influenced by outliers. We modify an algorithm proposed by Nyström and colleagues, and quantify saccade detection performance in both simulated and human data. Our modified algorithm shows a significant and marked improvement in saccade detection - showing both more true positives and less false negatives – especially under higher noise levels. We conclude that robust estimators can be widely adopted in other common, automatic gaze classification algorithms due to their ease of implementation.
机译:扫视检测是凝视数据分析的关键步骤。扫视检测的常用方法是使用简单的速度或加速度值的阈值,其可以使用均值和标准偏差来估计数据。然而,该方法具有由其试图检测的非常信号的影响,扫视期间发生的外围速度或加速度的缺点。我们提出使用中位绝对偏差(MAD),一种不受异常值影响的稳健估算器。我们修改NYSTRÖM及其同事提出的算法,并在模拟和人类数据中量化SACCADE检测性能。我们的修改算法显示了扫视检测的显着且显着的改进 - 显示了更真实的阳性和更少的假阴性 - 特别是在较高的噪声水平下。我们得出结论,由于其易于实现,稳健的估计器可以广泛采用其他常见的自动凝视分类算法。

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