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Flickr circles: Mining socially-aware aesthetic tendency

机译:Flickr圈子:挖掘具有社会意识的审美倾向

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Aesthetic tendency discovery is a useful and interesting application in social media. This paper proposes to categorize large-scale Flickr users into multiple circles. Each circle contains users with similar aesthetic interests (e.g., landscapes or abstract paintings). We notice that: 1) an aesthetic model should be flexible as different visual features may be used to describe different image sets, and 2) the numbers of photos from different users varies significantly and some users have very few photos. Therefore, a regularized topic model is proposed to quantify user's aesthetic interest as a distribution in the latent space. Then, a graph is built to describe the similarity of aesthetic interests among users. Obviously, densely connected users are with similar aesthetic interests. Thus an efficient dense subgraph mining algorithm is adopted to group users into different circles. Experiments show that our approach accurately detects circles on an image set crawled from over 60,000 Flickr users.
机译:审美趋势发现在社交媒体中是一种有用且有趣的应用程序。本文建议将大型Flickr用户分为多个圈子。每个圈子都包含具有相似审美兴趣的用户(例如风景或抽象绘画)。我们注意到:1)审美模型应该具有灵活性,因为可以使用不同的视觉特征来描述不同的图像集; 2)来自不同用户的照片数量差异很大,并且一些用户的照片很少。因此,提出了一种规范化的主题模型来量化用户的审美兴趣作为潜在空间中的分布。然后,建立一个图来描述用户之间审美兴趣的相似性。显然,紧密联系的用户具有相似的审美兴趣。因此,采用了一种有效的密集子图挖掘算法将用户分为不同的圈子。实验表明,我们的方法可以准确地检测出超过60,000名Flickr用户抓取的图像集上的圆圈。

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