首页> 外文会议>European Conference on Computer Vision(ECCV 2006) pt.3; 20060507-13; Graz(AT) >Studying Aesthetics in Photographic Images Using a Computational Approach
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Studying Aesthetics in Photographic Images Using a Computational Approach

机译:使用计算方法研究摄影图像中的美学

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Aesthetics, in the world of art and photography, refers to the principles of the nature and appreciation of beauty. Judging beauty and other aesthetic qualities of photographs is a highly subjective task. Hence, there is no unanimously agreed standard for measuring aesthetic value. In spite of the lack of firm rules, certain features in photographic images are believed, by many, to please humans more than certain others. In this paper, we treat the challenge of automatically inferring aesthetic quality of pictures using their visual content as a machine learning problem, with a peer-rated online photo sharing Website as data source. We extract certain visual features based on the intuition that they can discriminate between aesthetically pleasing and displeasing images. Automated classifiers are built using support vector machines and classification trees. Linear regression on polynomial terms of the features is also applied to infer numerical aesthetics ratings. The work attempts to explore the relationship between emotions which pictures arouse in people, and their low-level content. Potential applications include content-based image retrieval and digital photography.
机译:在艺术和摄影领域,美学是指自然和欣赏美的原理。判断照片的美感和其他美学品质是一项高度主观的任务。因此,没有一致同意的衡量美学价值的标准。尽管缺乏严格的规则,但许多人认为摄影图像中的某些特征比某些其他特征更能使人满意。在本文中,我们以同等评级的在线照片共享网站作为数据源,来解决使用视觉内容作为机器学习问题自动推断图片的美学质量的挑战。我们根据直觉来提取某些视觉特征,因为它们可以区分美观和令人讨厌的图像。自动化分类器是使用支持向量机和分类树构建的。对特征的多项式项的线性回归也可用于推断数值美学评级。这项工作试图探索人们所唤起的情绪与其低级内容之间的关系。潜在的应用包括基于内容的图像检索和数字摄影。

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