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Assessment of eye-tracking scanpath outliers using fractal geometry

机译:使用分形几何评估眼睛跟踪扫描路径异常值

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摘要

Outlier scanpaths identification is a crucial preliminary step in designing visual software, digital media analysis, radiology training and clustering participants in eye-tracking experiments. However, the task is challenging due to the visual irregularity of the scanpath shapes and the difficulty in dimensionality reduction due to geometric complexity. Conventional approaches have used heat maps to exclude scanpaths that lack a similarity pattern. However, the typically-used packages, such as ScanMatch and MultiMatch often generate discordant results when outlier identification is done empirically. This paper introduces a novel outlier evaluation approach by integrating the fractal dimension (FD), capturing the geometrical complexity of patterns, as an additional parameter with the heat map. This additional parameter is used to evaluate the degree of influence of a scanpath within a dataset. More specifically, the 2D Cartesian coordinates of a scanpath are fitted to a space filling 1D fractal curve to characterise its temporal FD. The FDs of the scanpaths are then compared to match their geometric complexity to one another. The findings indicate that the FD can be a beneficial additional parameter when evaluating the candidacy of poorly matching scanpaths as outliers and performs better at identifying unusual scanpaths than using other methods, including scanpath matching, Jaccard, or bounding box methods alone.
机译:异常值扫描路径识别是设计视觉软件,数字媒体分析,放射学培训和集群参与者在追踪实验中的关键初步步骤。然而,由于扫描路径形状的视觉不规则性以及由于几何复杂性,由于扫描路径形状的视觉不规则性和难度降低的难度,任务是具有挑战性的。传统方法使用热图来排除缺乏相似性模式的扫描路径。但是,当经验完成异常识别时,通常使用的包装诸如ScanMatch和Multimatch的包通常会产生不和谐的结果。本文通过集成分形尺寸(FD),捕获图案的几何复杂性,作为具有热图的附加参数来介绍一种新的异常值评估方法。此附加参数用于评估数据集中扫描路径的影响程度。更具体地,扫描路径的2D笛卡尔坐标装配到填充1D分形曲线的空间,以表征其时间FD。然后将扫描路径的FDS进行比较,以彼此匹配它们的几何复杂性。当时评估扫描路径匹配不良匹配的候选关系时,FD可以是一个有益的附加参数,并在识别不像使用其他方法时更好地执行扫描路径匹配,Jaccard或边界框方法。

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