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Quiet Eye Affects Action Detection from Gaze More Than Context Length

机译:安静的眼睛影响来自凝视的动作检测超过上下文长度

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Every purposive interactive action begins with an intention to interact. In the domain of intelligent adaptive systems, behavioral signals linked to the actions are of great importance, and even though humans are good in such predictions, interactive systems are still falling behind. We explored mouse interaction and related eye-movement data from interactive problem solving situations and isolated sequences with high probability of interactive action. To establish whether one can predict the interactive action from gaze, we 1) analyzed gaze data using sliding fixation sequences of increasing length and 2) considered sequences several fixations prior to the action, either containing the last fixation before action (i.e. the quiet eye fixation) or not. Each fixation sequence was characterized by 54 gaze features and evaluated by an SVM-RBF classifier. The results of the systematic evaluation revealed importance of the quiet eye fixation and statistical differences of quiet eye fixation compared to other fixations prior to the action.
机译:每次有目的的互动行动都始于互动的意图。在智能自适应系统的领域中,与行动相关的行为信号非常重要,即使人类在这种预测中擅长,互动系统仍然落后。我们探讨了互动问题求解情况和隔离序列的鼠标交互和相关的眼球运动数据,具有互动动作的高概率。为了建立一种可以预测来自凝视的互动动作,我们1)使用增加长度的滑动固定序列分析凝视数据和2)认为在动作之前的序列几种固定,要么在动作之前的最后一个固定(即安静的眼睛固定) ) 或不。每个固定序列的特征在于54缩点特征,并由SVM-RBF分类器评估。系统评价的结果显示,与作用前的其他固定相比,安静的眼睛固定和安静眼固定的统计差异的重要性。

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