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首页> 外文期刊>Journal of visual communication & image representation >Semantic meaning modulates object importance in human fixation prediction
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Semantic meaning modulates object importance in human fixation prediction

机译:语义含义调制人体固定预测中的对象重要性

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Humans tend to allocate attention to semantic entities. Objects are important in fixation selection, but not all the objects are equally attractive. In this paper, we introduce the concept of attribute bias to characterize the influence of semantic attributes compared with low-level saliency on fixation distribution. Two different ways are adopted to get two sets of semantic attributes. In both cases, most semantic attributes have a positive influence on drawing attention and contribute more than low-level saliency in object areas. We also find that attribute bias is robust to low-level saliency and can consistently reflect the relative attractiveness of objects with different semantic attributes. It is demonstrated that such bias helps make better fixation predictions by distinguishing the importance of objects, although low-level saliency models with better performance are less dramatically improved by attribute bias. These findings indicate the role of conceptual meaning as opposed to features in visual attention.
机译:人类倾向于分配对语义实体的关注。对象在固定选择中很重要,但并非所有对象都同样有吸引力。在本文中,我们介绍了属性偏差的概念,以表征语义属性对固定分布的低级显着性的影响。采用两种不同的方式来获得两组语义属性。在这两种情况下,大多数语义属性都对绘制注意力产生积极影响,并且在对象区域中提供了超过低级别的显着性。我们还发现属性偏置对低级显着性强大,并且可以始终如一地反映具有不同语义属性的对象的相对吸引力。据证明,这种偏差通​​过区分对象的重要性来提高定影预测,尽管通过属性偏置的性能更好的低级显着模型较小地显着提高。这些发现表明概念意义的作用,而不是视觉关注的特征。

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