自动插图与跨媒体检索大规模集合

Filipe Coelho, Cristina Ribeiro
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引用次数: 11

摘要

在本文中,我们的任务是寻找合适的图像来说明文本,从特定的新闻故事到更通用的博客条目。我们开发了一个多媒体信息检索支持的自动插图系统,该系统可以对文本进行分析,并提供一个候选图像列表来进行插图。该系统在SAPO-Labs的媒体集合上进行了测试,其中包含近200万张带有简短描述的图像,以及MIRFlickr-25000的集合,其中包含来自Flickr的照片和用户标签。可视化内容由联合复合描述符描述,并由置换前缀索引索引。插图是一个使用文本搜索、分数过滤和视觉聚类的三个阶段的过程。使用详尽和近似可视化搜索的初步评估演示了所使用的可视化描述符和近似索引方案的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic illustration with cross-media retrieval in large-scale collections
In this paper, we approach the task of finding suitable images to illustrate text, from specific news stories to more generic blog entries. We have developed an automatic illustration system supported by multimedia information retrieval, that analyzes text and presents a list of candidate images to illustrate it. The system was tested on the SAPO-Labs media collection, containing almost two million images with short descriptions, and the MIRFlickr-25000 collection, with photos and user tags from Flickr. Visual content is described by the Joint Composite Descriptor and indexed by a Permutation-Prefix Index. Illustration is a three-stage process using textual search, score filtering and visual clustering. A preliminary evaluation using exhaustive and approximate visual searches demonstrates the capabilities of the visual descriptor and approximate indexing scheme used.
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