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Identifying Image Preferences Based on Demographic Attributes

机译:根据受众特征识别图像首选项

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The intent of this study is to determine what sorts of images are considered more interesting by which demographic groups. Specifically, we attempt to identify images whose interestingness ratings are influenced by the demographic attribute of the viewer's gender. To that end, we use the data from an experiment where 18 participants (9 women and 9 men) rated several hundred images based on "visual interest" or preferences in viewing images. The images were selected to represent the consumer "photo-space" - typical categories of subject matter found in consumer photo collections. They were annotated using perceptual and semantic descriptors. In analyzing the image interestingness ratings, we apply a multivariate procedure known as forced classification, a feature of dual scaling, a discrete analogue of principal components analysis (similar to correspondence analysis). This particular analysis of ratings (i.e., ordered-choice or Likert) data enables the investigator to emphasize the effect of a specific item or collection of items. We focus on the influence of the demographic item of gender on the analysis, so that the solutions are essentially confined to subspaces spanned by the emphasized item. Using this technique, we can know definitively which images' ratings have been influenced by the demographic item of choice. Subsequently, images can be evaluated and linked, on one hand, to their perceptual and semantic descriptors, and, on the other hand, to the preferences associated with viewers' demographic attributes.
机译:这项研究的目的是确定哪种统计图像被哪些人口统计学群体认为更有趣。具体而言,我们尝试识别其有趣程度受到观看者性别的受众特征影响的图像。为此,我们使用来自实验的数据,其中18位参与者(9位女性和9位男性)根据“视觉兴趣”或观看图片的偏好对几百张图片进行了评分。选择图像以表示消费者的“照片空间”-在消费者照片集中发现的主题的典型类别。使用感性和语义描述符对它们进行注释。在分析图像有趣度等级时,我们应用了称为强制分类的多变量程序,双重缩放的功能,主成分分析的离散模拟(类似于对应分析)。评级(即有序选择或李克特)数据的这种特殊分析使研究人员能够强调特定项目或项目集合的影响。我们将重点放在性别人口统计项对分析的影响上,从而使解决方案本质上局限于由强调项跨越的子空间。使用此技术,我们可以确切地知道所选择的人口统计信息影响了哪些图像的评级。随后,可以对图像进行评估,一方面将它们链接到其感知和语义描述符,另一方面,可以链接到与观众的人口统计属性相关的偏好。

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