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Searching Consumer Image Collections Using Web-based Concept Expansion

机译:使用基于Web的概念扩展来搜索消费者图像集合

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As consumers accumulate more and more personal imagery, searching for specific images has become increasingly difficult. Consumers typically provide little or no annotations, and automated classifiers and concept tagging tools are limited in their scope and vocabulary. This work addresses this sparsity of semantic information by leveraging domain-specific information provided by online photo-sharing communities. Such information enables improved search by allowing user-provided search terms to be expanded into a set of semantically related concepts, using relevant semantic relationships provided by millions of users. Our system first extracts metadata using a modest number of image and event-based semantic classifiers, as well as any meaningful file or folder names. When users pose text-based queries, our system retrieves images from their personal image collections by leveraging Flickr's tag dataset for concept expansion. This approach enables users to search their collections without having to manually annotate their pictures. We compare the retrieval performance of using a Flickr-based concept expander with the performance obtained without concept expansion and with using a WordNet-based concept expander. The results demonstrate that common sense knowledge gleaned from online photo sharing communities can enable meaningful image search on consumer image collections, searches that would be impossible using only the available image metadata.
机译:随着消费者积累越来越多的个人图像,搜索特定图像变得越来越困难。消费者通常提供很少或根本不提供注释,并且自动分类器和概念标记工具的范围和词汇都受到限制。这项工作通过利用在线照片共享社区提供的特定于域的信息来解决语义信息的这种稀疏性。此类信息通过使用数百万用户提供的相关语义关系,允许用户提供的搜索词扩展为一组语义相关的概念,从而改善了搜索效果。我们的系统首先使用少量图像和基于事件的语义分类器以及任何有意义的文件或文件夹名称来提取元数据。当用户进行基于文本的查询时,我们的系统将利用Flickr的标签数据集从其个人图像集中检索图像,以进行概念扩展。这种方法使用户可以搜索其收藏集,而不必手动注释其图片。我们将使用基于Flickr的概念扩展器与不使用概念扩展以及使用基于WordNet的概念扩展器获得的性能进行比较。结果表明,从在线照片共享社区收集的常识知识可以实现对消费者图像集的有意义的图像搜索,而仅使用可用的图像元数据就不可能进行搜索。

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