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What Makes an Image Popular?

机译:是什么使图像受欢迎?

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摘要

Hundreds of thousands of photographs are uploaded to the internet every minute through various social networking and photo sharing platforms. While some images get millions of views, others are completely ignored. Even from the same users, different photographs receive different number of views. This begs the question: What makes a photograph popular? Can we predict the number of views a photograph will receive even before it is uploaded? These are some of the questions we address in this work. We investigate two key components of an image that affect its popularity, namely the image content and social context. Using a dataset of about 2.3 million images from Flickr, we demonstrate that we can reliably predict the normalized view count of images with a rank correlation of 0.81 using both image content and social cues. In this paper, we show the importance of image cues such as color, gradients, deep learning features and the set of objects present, as well as the importance of various social cues such as number of friends or number of photos uploaded that lead to high or low popularity of images.
机译:每分钟通过各种社交网络和照片共享平台将数十万张照片上传到Internet。尽管某些图像获得了数百万个视图,但其他图像却被完全忽略。即使来自相同的用户,不同的照片也会收到不同数量的视图。这就引出了一个问题:是什么使照片受欢迎?我们可以预测照片在上传之前将获得的观看次数吗?这些是我们在这项工作中要解决的一些问题。我们研究了影响图像受欢迎程度的两个关键因素,即图像内容和社会背景。使用来自Flickr的约230万张图像的数据集,我们证明了我们可以使用图像内容和社交提示来可靠地预测图像的归一化视图计数,其秩相关系数为0.81。在本文中,我们展示了图像提示的重要性,例如颜色,渐变,深度学习功能和存在的对象集,以及各种社交提示的重要性,例如朋友数量或上传的照片数量导致或图像的受欢迎程度较低。

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