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Predicting Stimulus-Driven Attentional Selection Within Mobile Interfaces

机译:预测移动界面内的刺激驱动的注意力选择

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Masciocchi and Still [1] suggested that biologically inspired computational saliency models could predict attentional deployment within web-pages. Their stimuli were presented on a large desktop monitor. We explored whether a saliency model's predictive performance can be applied to small mobile interface displays. We asked participants to free-view screenshots of NASA's mobile application Playbook. The Itti et al. [2] saliency model was employed to produce the predictive stimulus-driven maps. The first six fixations were used to select values to form the saliency maps' bins, which formed the observed distribution. This was compared to the shuffled distribution, which offers a very conservative chance comparison as it includes predictable spatial biases by using a within-subjects bootstrapping technique. The observed distribution values were higher than the shuffled distribution. This suggests that a saliency model was able to predict the deployment of attention within small mobile application interfaces.
机译:Masciocchi和仍然[1]建议生物学启发的计​​算显着模型可以预测网页内的注意部署。他们的刺激呈现在大型桌面显示器上。我们探讨了显着模型的预测性能是否可以应用于小型移动接口显示。我们要求参与者彻底查看NASA的移动应用程序剧本的屏幕截图。 Itti等。使用显着模型来产生预测刺激驱动的地图。前六个固定器用于选择值以形成显着图的箱,其形成了观察到的分布。将其与混洗分布进行比较,其提供了一种非常保守的机会比较,因为它包括通过在受试者内部启动技术内使用可预测的空间偏差。观察到的分布值高于洗机分布。这表明显着模型能够在小型移动应用程序接口中预测注意力部署。

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