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Quantifying saccades while walking: Validity of a novel velocity-based algorithm for mobile eye tracking

机译:行走时量化扫视:一种新颖的基于速度的移动眼动追踪算法的有效性

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We validate a novel algorithm to detect saccades from raw data obtained during walking from a mobile infra-red eye-tracking device. The algorithm was based on a velocity threshold detection method, which excluded artefacts such as blinks and flickers using specific criteria. Mobile infra-red eye-tracking was performed with a group of healthy older adults (n=5) and Parkinson's disease (n=5) subjects. Saccades determined from raw eye tracker data obtained during walking using the algorithm were compared to a ground truth dataset defined as frame-by-frame visual inspection of raw eye-tracking videos. 100 trials from 10 subjects were analyzed and compared. The algorithm was highly reliable when compared to the ground truth (ICC(2,1) = 0.94), with an overall correct saccade detection percentage of 85%. This provides a simple yet robust algorithm for the analysis of mobile eye-tracking data.
机译:我们验证了一种新颖的算法,可以从移动红外眼动仪行走过程中获得的原始数据中检测扫视运动。该算法基于速度阈值检测方法,该方法使用特定的标准排除了诸如眨眼和闪烁之类的伪影。对一组健康的老年人(n = 5)和帕金森氏病(n = 5)受试者进行了移动红外眼动追踪。将使用该算法从步行过程中获得的原始眼动仪数据确定的扫视与定义为对原始眼动视频的逐帧视觉检查的地面真相数据集进行比较。分析并比较了来自10位受试者的100个试验。与地面实况(ICC(2,1)= 0.94)相比,该算法高度可靠,总体正确扫视检测百分比为85%。这为分析移动眼动数据提供了一种简单而强大的算法。

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