Learning to predict where humans look | IEEE Conference Publication | IEEE Xplore

Learning to predict where humans look


Abstract:

For many applications in graphics, design, and human computer interaction, it is essential to understand where humans look in a scene. Where eye tracking devices are not ...Show More

Abstract:

For many applications in graphics, design, and human computer interaction, it is essential to understand where humans look in a scene. Where eye tracking devices are not a viable option, models of saliency can be used to predict fixation locations. Most saliency approaches are based on bottom-up computation that does not consider top-down image semantics and often does not match actual eye movements. To address this problem, we collected eye tracking data of 15 viewers on 1003 images and use this database as training and testing examples to learn a model of saliency based on low, middle and high-level image features. This large database of eye tracking data is publicly available with this paper.
Date of Conference: 29 September 2009 - 02 October 2009
Date Added to IEEE Xplore: 06 May 2010
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Conference Location: Kyoto, Japan

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