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Assessing the aesthetic quality of photographs through group comparison

机译:通过小组比较评估照片的美学质量

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The availability and exponential growth in online media provides opportunities for understanding and responding to real world challenges. In this paper we investigate the photo quality assessment problem using a large volume of online images retrieved by Google Image Search. To effectively use the big data, we present new approaches that compute discriminative features from a group of relevant images. We also evaluate two popular regression models, support vector regression (SVR) and ranking support vector machine (RankSVM), for their effectiveness in predicting an aesthetic score from the features. Experiments using 99,000 online images provide interesting results. We examine and identify the cases in which online images facilitate the automatic rating task.
机译:在线媒体的可用性和指数增长为理解和应对现实世界的挑战提供了机会。在本文中,我们使用Google Image Search检索的大量在线图像来调查照片质量评估问题。为了有效利用大数据,我们提出了从一组相关图像中计算判别特征的新方法。我们还评估了两种流行的回归模型,即支持向量回归(SVR)和排名支持向量机(RankSVM),因为它们可以根据这些特征预测美学分数。使用99,000张在线图片进行的实验提供了有趣的结果。我们会检查并确定在线图片有助于自动评分任务的情况。

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