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SimMeme: A Search Engine for Internet Memes

机译:SimMeme:Internet Memes的搜索引擎

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As more and more social network users interact through Internet Memes, an emerging popular type of captioned images, there is a growing need for users to quickly retrieve the right Meme for a given situation. As opposed conventional image search, visually similar Memes may reflect different concepts. Intent is sometimes captured by user annotations (e.g., tags), but these are often incomplete and ambiguous. Thus, a deeper analysis of the relations among Memes is required for an accurate, custom search. To address this problem, we present SimMeme, a Meme-dedicated search engine. SimMeme uses a generic graph-based data model that aligns various types of information about the Memes with a semantic ontology. A novel similarity measure that effectively considers all incorporated data is employed and serves as the foundation of our system. Our experimental results achieve using common evaluation metrics and crowd feedback, over a large repository of real-life annotated Memes, show that in the task of Meme retrieval, SimMeme outperforms state-of-the-art solutions for image retrieval.
机译:随着越来越多的社交网络用户通过Internet Memes(一种新兴的带字幕图像)进行交互,对于用户在给定情况下快速检索正确的Meme的需求日益增长。与常规图像搜索相反,视觉上相似的模因可能反映出不同的概念。意图有时会被用户注释(例如,标签)捕获,但这些注释通常不完整且模棱两可。因此,需要对Memes之间的关系进行更深入的分析,才能进行准确的自定义搜索。为了解决这个问题,我们介绍了MeMe专用的搜索引擎SimMeme。 SimMeme使用基于图形的通​​用数据模型,该模型将有关Memes的各种信息与语义本体对齐。有效地考虑了所有合并数据的新颖相似性度量被采用,并作为我们系统的基础。我们的实验结果是在大型的带真实注释的Memes知识库上使用通用的评估指标和人群反馈实现的,表明在Meme检索的任务中,SimMeme优于最新的图像检索解决方案。

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