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Hilbert attention maps for visualizing spatiotemporal gaze data

机译:希尔伯特注意图,用于可视化时空注视数据

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Attention maps-often in the form of heatmaps-are a common visualization approach to obtaining an overview of the spatial distribution of gaze data from eye tracking experiments. However, attention maps are not designed to let us easily analyze the temporal information of gaze data: they completely ignore temporal information by aggregating over time, or they use animation to build a sequence of attention maps. To overcome this issue, we introduce Hilbert attention maps: a 2D static visualization of the spatiotemporal distribution of gaze points. The visualization is based on the projection of the 2D spatial domain onto a space-filling Hilbert curve that is used as one axis of our new attention map; the other axis represents time. We visualize Hilbert attention maps either as dot displays or heatmaps. This 2D visualization works for data from individual participants or large groups of participants, it supports static and dynamic stimuli alike, and it does not require any preprocessing or definition of areas of interest. We demonstrate how our visualization allows analysts to identify spatiotemporal patterns of visual reading behavior, including attentional synchrony and smooth pursuit.
机译:注意图(通常以热图的形式)是一种常见的可视化方法,可以从眼睛跟踪实验中获得凝视数据的空间分布概况。但是,注意图的设计不能让我们轻松分析凝视数据的时间信息:它们通过随着时间的推移而完全忽略了时间信息,或者它们使用动画来构建注意图序列。为了克服这个问题,我们介绍了希尔伯特注意图:凝视点的时空分布的二维静态可视化。可视化基于2D空间域到空间填充Hilbert曲线上的投影,该曲线用作我们新的关注地图的一个轴;另一个轴代表时间。我们将希尔伯特注意图可视化为点显示或热图。这种2D可视化适用于来自单个参与者或大量参与者的数据,它支持静态和动态刺激,并且不需要任何预处理或感兴趣区域的定义。我们演示了我们的可视化如何使分析人员能够识别视觉阅读行为的时空模式,包括注意同步和顺畅的追求。

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