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Decoding What People See from Where They Look: Predicting Visual Stimuli from Scanpaths

机译:解码人们从他们看的地方看到的东西:从扫描路径预测视觉刺激

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Saliency algorithms are applied to correlate with the overt attentional shifts, corresponding to eye movements, made by observers viewing an image. In this study, we investigated if saliency maps could be used to predict which image observers were viewing given only scanpath data. The results were strong: in an experiment with 441 trials, each consisting of 2 images with scanpath data - pooled over 9 subjects - belonging to one unknown image in the set, in 304 trials (69%) the correct image was selected, a fraction significantly above chance, but much lower than the correctness rate achieved using scanpaths from individual subjects, which was 82.4%. This leads us to propose a new metric for quantifying the importance of saliency map features, based on discriminability between images, as well as a new method for comparing present saliency map efficacy metrics. This has potential application for other kinds of predictions, e.g., categories of image content, or even subject class.
机译:施加显着性算法以与观察者观察图像的观察者进行的观察者移动的公开注意力换档相关联。在这项研究中,我们调查了显着图可以用于预测仅在扫描路径数据中查看哪些图像观察者。结果强劲:在一个441试验的实验中,每个试验中的2个图像由扫描路径数据组成 - 汇集超过9个受试者 - 属于集合中的一个未知图像,在304试验中,选择了正确的图像,分数是正确的图像,分数大大差异,但远低于使用来自个体受试者的扫描路径所取得的正确性率,即82.4%。这导致我们提出了一种新的指标,用于量化显着图特征的重要性,基于图像之间的辨别性,以及比较当前显着性图功效度量的新方法。这对其他类型的预测具有潜在应用,例如图像内容的类别,甚至是主题类。

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