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Semi-automatic audio semantic concept discovery for multimedia retrieval

机译:用于多媒体检索的半自动音频语义概念发现

摘要

Huge amount of videos on the Internet have rare textual information, which makes video retrieval challenging given a text query. Previous work explored semantic concepts for content analysis to assist retrieval. However, the human-defined concepts might fail to cover the data and there is a potential gap between these concepts and the semantics expected from useru27s query. Also, building a corpus is expensive and time-consuming. To address these issues, we propose a semi-automatic framework to discover the semantic concepts. We limit ourselves in audio modality here. In the paper, we also discuss how to select meaningful vocabulary from the discovered hierarchical sub-categories and provide an approach to detect all the concepts without further annotation. We evaluate the method on NIST 2011 multimedia event detection (MED) dataset.
机译:互联网上的大量视频都包含稀有的文本信息,这使得在进行文本查询时视频检索具有挑战性。先前的工作探索了语义概念,用于内容分析以帮助检索。但是,人类定义的概念可能无法覆盖数据,并且这些概念与用户查询所期望的语义之间存在潜在的差距。而且,建立语料库既昂贵又费时。为了解决这些问题,我们提出了一个半自动框架来发现语义概念。我们在这里限制自己在音频方式上的使用。在本文中,我们还将讨论如何从发现的层次子类别中选择有意义的词汇,并提供一种无需进一步注释即可检测所有概念的方法。我们评估NIST 2011多媒体事件检测(MED)数据集上的方法。

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