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Recommending tags for pictures based on text, visual content and user context

机译:根据文本,视觉内容和用户上下文推荐图像的标签

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Imagine you are member of an online social system and want to upload a picture into the community pool. In current social software systems, you can probably tag your photo, share it or send it to a photo printing service and multiple other stuff. The system creates around you a space full of pictures, other interesting content (descriptions, comments) and full of users as well. The one thing current systems do not do, is understand what your pictures are about. We present here a collection of functionalities that make a step in that direction when put together to be consumed by a tag recommendation system for pictures. We use the data richness inherent in social online environments for recommending tags by analysing different aspects of the same data (text, visual content and user context). We also give an assessment of the quality of thus recommended tags.
机译:想象一下,您是在线社交系统的成员,并希望将照片上传到社区池中。在当前的社交软件系统中,您可以标记照片,分享或将其发送到照片打印服务和多个其他内容。系统在您周围创建一个充满图片的空间,其他有趣的内容(描述,评论)和满满的用户。目前系统不做的一件事,了解您的照片是什么。我们在这里介绍了一系列功能,这些功能是在将此方向上逐步进行,该方向被组合在一起由标签推荐系统进行图片。我们通过分析相同数据的不同方面(文本,视觉内容和用户上下文)来使用社交在线环境中固有的数据丰富度。我们还评估了建议标签的质量。

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