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Correlating Low-Level Image Statistics with Users' Rapid Aesthetic and Affective Judgments of Web Pages

机译:与用户的快速审美和Web页面的快速审判相关的低级图像统计数据

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In this paper, we report a study that examines the relationship between image-based computational analyses of web pages and users' aesthetic judgments about the same image material. Web pages were iteratively decomposed into quadrants of minimum entropy (quadtree decomposition) based on low-level image statistics, to permit a characterization of these pages in terms of their respective organizational symmetry, balance and equilibrium. These attributes were then evaluated for their correlation with human participants' subjective ratings of the same web pages on four aesthetic and affective dimensions. Several of these correlations were quite large and revealed interesting patterns in the relationship between low-level (i.e., pixel-level) image statistics and design-relevant dimensions.
机译:在本文中,我们报告了一项研究,该研究检查了关于网页的基于图像的计算分析与用户的审美判断之间的关系。网页基于低电平图像统计,迭代地分解成最小熵(Quadtree分解)的象限,以允许在各自的组织对称,平衡和均衡方面表征这些页面。然后评估这些属性以与四个美学和情感尺寸的相同网页的人类参与者的主观评级相关。这些相关性中的几个相当大,并且揭示了低级(即像素级)图像统计和设计相关维之间的关系的有趣模式。

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